A support device for an energy storage container

By combining clamping and lifting structures, the problems of poor fixation and non-adjustable height of energy storage container support devices are solved, achieving stable fixation, convenient movement, and extended equipment life.

CN224376610UActive Publication Date: 2026-06-19SHANDONG TIANZAO ENVIRONMENTAL PROTECTION ENG CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHANDONG TIANZAO ENVIRONMENTAL PROTECTION ENG CO LTD
Filing Date
2025-05-26
Publication Date
2026-06-19

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Abstract

This utility model relates to the field of energy storage equipment technology, and more particularly to a support device for an energy storage container, comprising: a support plate and an energy storage container body, wherein four support columns are slidably connected to the lower side of the support plate; a clamping and fixing structure is installed on the support plate, the clamping and fixing structure including a bidirectional screw rotatably connected to the inner side of the support plate, and two sliding plates threadedly connected to the outer side of the bidirectional screw. This utility model can better fix the energy storage container body through the clamping and fixing structure, and further enhances the fixing effect through the combined compression of the reinforcing spring and the reinforcing plate, effectively resisting the impact of severe weather. The lifting structure allows the height of the support plate to be raised or lowered during clamping and fixing.
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Description

Technical Field

[0001] This utility model relates to the field of energy storage equipment technology, and in particular to a support device for energy storage containers. Background Technology

[0002] Energy storage containers are mainly used for storing electrical energy, especially for converting scattered electrical energy, such as clean energy such as photovoltaic power generation, wind power generation, and solar power generation into electrical energy. Since these are dispersed, energy storage containers are needed for storage. For large energy storage containers, support devices are used for support and fixation.

[0003] Currently, the support devices for energy storage containers are generally heavy during use, making them difficult to move. Existing support devices typically rely solely on straps to secure the containers, which are not very effective and can still cause containers to fall off the support devices in severe weather. Furthermore, the existing support devices cannot be height-adjusted, making unloading and loading difficult. The immobility of the support devices also makes the transportation of energy storage containers challenging, still requiring the use of heavy machinery. Utility Model Content

[0004] To achieve the above objectives, the present invention adopts the following technical solution:

[0005] A support device for an energy storage container, comprising:

[0006] The support plate and the energy storage container body are provided, with four support columns slidably connected to the underside of the support plate.

[0007] The support plate is equipped with a clamping and fixing structure, which includes a bidirectional screw rotatably connected to the inner side of the support plate. The outer side of the bidirectional screw is threaded with two slide plates. The side walls of the two slide plates are slidably connected with four slide rods. The four slide rods are in pairs. One end of each pair of slide rods is fixedly connected to a reinforcing plate. The two reinforcing plates are fixedly connected to the slide plates with reinforcing springs.

[0008] Preferably, a lifting structure is installed on the support plate. The lifting structure includes four first threaded rods rotatably connected to the lower side of the support plate. The four first threaded rods are respectively threadedly connected to four support column feet. Four second threaded rods are rotatably connected to the lower side of the support plate. Lifting rods are threadedly connected to the outer sides of the four second threaded rods. Pulleys are rotatably installed on the lower side of the four lifting rods. The first threaded rods and the second threaded rods are connected by a first pulley assembly. A transmission structure for driving the second threaded rods to rotate is also installed on the support plate.

[0009] Preferably, the transmission structure includes four rotating shafts rotatably connected to the side wall of the support plate. The four rotating shafts are respectively connected to four adjacent second threaded rods via a second pulley assembly. A spur gear is fixedly sleeved on the outer side of each of the four rotating shafts. Two connecting rods are fixedly connected to the side walls of the two slide plates. A spur rack is fixedly connected to the side walls of the four connecting rods, and adjacent spur gears mesh with the spur racks.

[0010] Preferably, each of the four support column feet is fixedly connected to the support plate with a buffer spring.

[0011] Preferably, a plurality of connecting plates are fixedly connected to the lower side of the support plate.

[0012] Preferably, a knob is fixedly connected to one end of the bidirectional screw.

[0013] Compared with the prior art, the beneficial effects of this utility model are:

[0014] 1. In this utility model, the clamping and fixing structure can better fix the energy storage container body. The self-locking property of the bidirectional screw ensures that it will not loosen after clamping. Furthermore, the combined compression of the reinforcing spring and the reinforcing plate makes the fixing effect better and can effectively resist the invasion of severe weather.

[0015] 2. In this utility model, the height of the support plate can be raised or lowered as it is clamped and fixed by means of a lifting structure. During the clamping process, the support column moves downward to lift the support plate, thereby increasing the height of the support plate. This can reduce the corrosion of the container by ground moisture and water accumulation, and extend the service life of the equipment. When the clamp is released, the support column moves upward and the lifting rod moves downward, at which point the overall height decreases, which facilitates the unloading of the energy storage container and also facilitates the movement of the support device. Attached Figure Description

[0016] Figure 1 This is a three-dimensional structural diagram of a support device for an energy storage container proposed in this utility model;

[0017] Figure 2 This is a three-dimensional side view of a support device for an energy storage container proposed in this utility model.

[0018] Figure 3 This is a schematic diagram of the internal structure of a support device for an energy storage container proposed in this utility model.

[0019] Figure 4 This is a schematic diagram of the lifting structure of a support device for an energy storage container proposed in this utility model.

[0020] In the diagram: 1 Support plate, 2 Energy storage container body, 3 Support column foot, 4 Bidirectional screw, 5 Slide plate, 6 Slide rod, 7 Reinforcing plate, 8 Reinforcing spring, 9 First threaded rod, 10 Second threaded rod, 11 Lifting rod, 12 First pulley assembly, 13 Rotating shaft, 14 Second pulley assembly, 15 Spur gear, 16 Connecting rod, 17 Spur rack, 18 Buffer spring, 19 Connecting plate. Detailed Implementation

[0021] Reference Figures 1-4 A support device for an energy storage container, comprising:

[0022] The support plate 1 and the energy storage container body 2 are connected together. Multiple connecting plates 19 are fixedly connected to the lower side of the support plate 1. The connecting plates 19 can enhance the structural strength of the support plate 1 and prevent the energy storage container body 2 from causing damage to the support plate 1. Four support columns 3 are slidably connected to the lower side of the support plate 1. Each of the four support columns 3 is fixedly connected to the support plate 1 with a buffer spring 18. The buffer spring 18 can reduce the vibration brought by the external environment and reduce the impact of vibration on the support plate 1.

[0023] A clamping and fixing structure is installed on the support plate 1. The clamping and fixing structure includes a bidirectional screw 4 rotatably connected to the inner side of the support plate 1. A knob is fixedly connected to one end of the bidirectional screw 4. Rotating the knob can drive the bidirectional screw 4 to rotate. Two sliding plates 5 are threaded to the outer side of the bidirectional screw 4. A groove is opened on the upper side of the support plate 1. Both sliding plates 5 slide in the groove. The groove restricts the movement of the two sliding plates 5 to move towards the center simultaneously by the rotation of the bidirectional screw 4. Four sliding rods 6 are slidably connected to the side walls of the two sliding plates 5. The four sliding rods 6 are in pairs. A reinforcing plate 7 is fixedly connected to one end of each pair of sliding rods 6. A reinforcing spring 8 is fixedly connected between the two reinforcing plates 7 and the sliding plates 5. During the clamping process of the two sliding plates 5, the reinforcing plate 7 first contacts the energy storage container body 2. During the continued clamping process, it can compress the reinforcing spring 8. The elasticity of the reinforcing spring 8 makes the clamping force of the reinforcing plate 7 on the energy storage container body 2 stronger, thus making the clamping effect better and more stable.

[0024] A lifting structure is installed on the support plate 1. The lifting structure includes four first threaded rods 9 rotatably connected to the lower side of the support plate 1. The four first threaded rods 9 are respectively threadedly connected to four support column feet 3. Four second threaded rods 10 are rotatably connected to the lower side of the support plate 1. Lifting rods 11 are threadedly connected to the outer sides of the four second threaded rods 10. The thread directions of the first threaded rods 9 and the second threaded rods 10 are opposite, so that when the support column feet 3 move downward, the lifting rods 11 move upward, and vice versa. This allows the support device to switch between sliding and fixed states. Pulleys are rotatably installed on the lower side of the four lifting rods 11. The first threaded rods 9 and the second threaded rods 10 are connected by a first pulley assembly 12, which consists of two pulleys and a belt. The plate 1 is also equipped with a transmission structure that drives the second threaded rod 10 to rotate. The transmission structure includes four rotating shafts 13 rotatably connected to the side wall of the support plate 1. The four rotating shafts 13 are respectively connected to the four adjacent second threaded rods 10 through the second pulley assembly 14. The second pulley assembly 14 also consists of two pulleys and a belt. Spur gears 15 are fixedly sleeved on the outside of each of the four rotating shafts 13. Two connecting rods 16 are fixedly connected to the side walls of the two slide plates 5. Spur racks 17 are fixedly connected to the side walls of the four connecting rods 16. Adjacent spur gears 15 and spur racks 17 mesh. During the clamping process, the movement of the slide plate 5 can move the spur racks 17 through the connecting rods 16, thereby causing the spur gears 15 to rotate. At this time, through power transmission, the first threaded rod 9 rotates, causing the support column foot 3 to move downward, thereby supporting the support plate 1.

[0025] In this invention, firstly, the energy storage container body 2 is placed on the support plate 1 by lifting, and the support device is pushed to transport the energy storage container body 2 to the corresponding position for storage. Rotating the knob causes the bidirectional screw 4 to rotate, which in turn moves the two sliding plates 5 towards the center. During this movement, the reinforcing plate 7 and reinforcing spring 8 enhance the clamping force, thereby ensuring higher clamping stability and better fixation, effectively resisting the impact of severe weather. Furthermore, the self-locking property of the bidirectional screw 4 prevents it from loosening after clamping. During clamping, the movement of the sliding plates 5 drives the connecting rod 16 to move. The connecting rod 16 drives the spur gear 15 to rotate via the rack 17, which in turn drives the rotating shaft 13 to rotate via the second pulley assembly. Part 14 drives the second threaded rod 10 to rotate, and the second threaded rod 10 drives the first threaded rod 9 to rotate through the first pulley assembly 12. Because the thread directions of the first threaded rod 9 and the second threaded rod 10 are opposite, the rotation direction of the first threaded rod 9 causes the support column 3 to move downward. Therefore, the rotation direction of the second threaded rod 10 causes the lifting rod 11 to move upward, thereby increasing the overall height of the support plate 1. This reduces the corrosion of the box by ground moisture and water accumulation, and extends the service life of the equipment. When the clamp is released, the second threaded rod 10 causes the lifting rod 11 to move downward, and the first threaded rod 9 causes the support column 3 to move upward. Because the length of the lifting rod 11 is less than that of the support column 3, the overall height of the support plate 1 decreases, which facilitates the unloading of goods by the staff. It can also be moved by the pulleys rotatably installed on the lower side of the lifting rod 11.

Claims

1. A support device for an energy storage container, comprising a support plate (1) and an energy storage container body (2), characterized in that, The support plate (1) is slidably connected to four support columns (3) on its lower side; The support plate (1) is equipped with a clamping and fixing structure, which includes a bidirectional screw (4) rotatably connected to the inner side of the support plate (1). The outer side of the bidirectional screw (4) is threaded with two sliding plates (5). The side walls of the two sliding plates (5) are slidably connected with four sliding rods (6). The four sliding rods (6) are in pairs. One end of each pair of sliding rods (6) is fixedly connected with a reinforcing plate (7). The two reinforcing plates (7) are fixedly connected with a reinforcing spring (8) between them and the sliding plates (5).

2. A support arrangement for an energy storage container according to claim 1, wherein, A lifting structure is installed on the support plate (1). The lifting structure includes four first threaded rods (9) rotatably connected to the lower side of the support plate (1). The four first threaded rods (9) are respectively threaded to the four support column feet (3). Four second threaded rods (10) are rotatably connected to the lower side of the support plate (1). Lifting rods (11) are threaded to the outer side of each of the four second threaded rods (10). Pulleys are rotatably installed on the lower side of the four lifting rods (11). The first threaded rods (9) and the second threaded rods (10) are connected by a first pulley assembly (12). A transmission structure for driving the second threaded rods (10) to rotate is also installed on the support plate (1).

3. A support arrangement for an energy storage container according to claim 2, wherein, The transmission structure includes four rotating shafts (13) rotatably connected to the side wall of the support plate (1). The four rotating shafts (13) are respectively connected to the four adjacent second threaded rods (10) through the second pulley assembly (14). Spur gears (15) are fixedly sleeved on the outer side of each of the four rotating shafts (13). Two connecting rods (16) are fixedly connected to the side walls of the two slide plates (5). Spur racks (17) are fixedly connected to the side walls of the four connecting rods (16), and adjacent spur gears (15) mesh with spur racks (17).

4. A support apparatus for an energy storage container according to claim 1, wherein, Each of the four support column feet (3) is fixedly connected to the support plate (1) by a buffer spring (18).

5. A support apparatus for an energy storage container according to claim 1, wherein, Multiple connecting plates (19) are fixedly connected to the lower side of the support plate (1).

6. A support apparatus for an energy storage container according to claim 1, wherein, A knob is fixedly connected to one end of the bidirectional screw (4).