Supporting structure of energy storage container
By designing buffer devices, including buffers and shock absorbers, into the support structure of the energy storage container, the problem of insufficient stability of the energy storage container under external forces is solved, and the stable support and shock absorption effect of the all-vanadium liquid energy storage container is achieved.
Patent Information
- Application Number
- CN202423005113.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-05
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2034-12-05
AI Technical Summary
When existing energy storage containers are subjected to external impacts or vibrations, the stability of the lower container is difficult to guarantee, especially for all-vanadium liquid energy storage containers, which suffer from shaking and vibration that affect normal use.
A support structure for an energy storage container was designed, including a support plate, a support frame, and a buffer device. The buffer device consists of a buffer and a shock absorber. The buffer is located at the center of the support frame, and the shock absorber is located at the top corner of the support frame. The buffer and shock absorption effect are provided through elastic elements and a slider structure. The support rod is movably connected to the support frame to achieve stable support.
It effectively reduces the impact force on the energy storage container, improves the overall stability of the container, and is especially suitable for all-vanadium liquid energy storage containers, enhancing the safety and convenience of application.
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Figure CN223583001U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to a kind of support structures, specifically a kind of support structure of energy storage container. BACKGROUND
[0002] Energy storage container is a kind of standardization container integrated battery energy storage system and other related equipment, with the characteristics of simplifying infrastructure construction cost, short construction period, high modularization degree, convenient transportation and installation, etc., can be applied to thermal power, wind power, solar power and other power stations or islands, communities, schools, research institutions, factories, large load centers and other application occasions. As a kind of energy storage container, the structure of vanadium battery energy storage container is relatively special, generally provided with two containers, the upper container is placed with management system device, and the lower container is placed with electric pile and liquid storage tank.
[0003] In the prior art, such as the application number 202410769457.2, the name is photovoltaic panel support device with drainage structure and energy storage container, although a kind of support device of energy storage container is disclosed, but still has certain disadvantages, the full vanadium liquid energy storage container in use process, due to the lower container is placed with liquid storage tank, if the energy storage container application process appears external impact or vibration, how to guarantee the stability of the lower container is the key. UTILITY MODEL CONTENT
[0004] The main purpose of the utility model is to provide a kind of support structure of energy storage container, the support structure provides all-around buffering force for energy storage container, especially when subjected to strong external force, can prevent container from shaking, vibrating and other influences normal use, improve the overall stability of container.
[0005] In order to achieve the above purpose, the support structure of energy storage container of the utility model, including support disc, support frame and buffer device, support disc is sleeved in support frame, buffer device is located between support disc and support frame, support disc includes groove, energy storage container is located in the groove, buffer device includes buffer and several shock absorbers, buffer is located at the center position of support frame, shock absorber is located at the internal top corner of support frame, buffer includes upper mounting plate, upper pressing block, connecting plate, elastic piece, lower pressing block, lower mounting plate, sliding slot, sliding block, upper rotating shaft and lower rotating shaft, the upper end of elastic piece is connected with the bottom surface of upper pressing block, the lower end is connected with the top surface of lower pressing block, and elastic piece is sleeved in connecting plate.
[0006] Further, the upper mounting plate is fixed to the bottom surface of the support disc, and the lower mounting plate is fixed to the inner side of the bottom surface of the support frame.
[0007] Further, the lower end surface of the upper mounting plate is provided with four positioning blocks, the upper end surface of the lower mounting plate is provided with four positioning blocks, and connecting shafts are arranged between two longitudinally adjacent positioning blocks.
[0008] Further, the upper end of the upper rotating shaft is rotationally connected with the corresponding connecting shaft on the upper mounting plate, the lower end of the upper rotating shaft is rotationally connected with the positioning shaft arranged on the outer side surface of the corresponding sliding block, the upper end of the lower rotating shaft is rotationally connected with the positioning shaft arranged on the outer side surface of the corresponding sliding block close to the lower rotating shaft, and the lower end of the lower rotating shaft is rotationally connected with the corresponding connecting shaft on the lower mounting plate.
[0009] Further, the buffer device further comprises a supporting rod, one end of the supporting rod is fixedly connected with the outer end surface of the sliding groove, and the other end of the supporting rod is movably connected with the inner wall of the side surface of the corresponding supporting frame.
[0010] Further, the supporting disc is provided with a mesh screen at the bottom, and the mesh screen is connected with a storage device at the bottom.
[0011] Further, the shock absorber comprises an upper pull plate, a fixed plate, a compression spring, an arc-shaped groove, a lower cover plate and a clamping piece.
[0012] Further, the arc-shaped groove is arranged on the lower end surface of the fixed plate, the upper end surface of the compression spring is connected with the lower end surface of the fixed plate and located in the arc-shaped groove, the clamping piece is fixed on the upper end surface of the lower cover plate, the compression spring and the arc-shaped groove are located in the clamping piece, and the lower end surface of the compression spring is hingedly connected with the upper end surface of the lower cover plate.
[0013] Further, the upper pull plate is provided with a mounting hole, a bolt is arranged in the mounting hole and used for mounting the upper pull plate on the bottom surface of the supporting disc, and the lower cover plate is also provided with a mounting hole, a bolt is arranged in the mounting hole and used for mounting the lower cover plate on the inner side of the bottom surface of the supporting frame.
[0014] Through the above technical scheme, the beneficial effects of the utility model include that the supporting structure of the utility model is provided with a buffer device, the buffer device comprises a buffer at the middle position and a shock absorber at the top corner position, and the two structures are used in cooperation, so that the impact force borne by the energy storage container on the supporting structure can be comprehensively reduced, and the application of the full-vanadium liquid energy storage container is more safe and convenient. BRIEF DESCRIPTION OF DRAWINGS
[0015] The utility model will be explained in further detail in combination with the drawings and specific embodiments.
[0016] Figure 1 is the external structure schematic view of the supporting structure of the energy storage container of the utility model.
[0017] Figure 2 is the internal structure schematic view of the supporting structure of the energy storage container of the utility model.
[0018] Figure 3 This is a cross-sectional view of the support structure of the energy storage container of this utility model.
[0019] Figure 4 This is a schematic diagram of the buffer structure of the support structure of the energy storage container of this utility model.
[0020] Figure 5 This is a schematic diagram of the shock absorber in the support structure of the energy storage container of this utility model.
[0021] Explanation of reference numerals in the attached figures
[0022] 10. Support plate; 11. Groove; 12. Strainer; 20. Support frame; 30. Buffer; 31. Upper mounting plate; 32. Upper pressure block; 33. Connecting plate; 34. Elastic element; 35. Lower pressure block; 36. Lower mounting plate; 37. Slide groove; 38. Slider; 381. Positioning shaft; 39. Upper rotating shaft; 40. Lower rotating shaft; 41. Positioning block; 42. Connecting shaft; 43. Support rod; 50. Shock absorber; 51. Upper pull plate; 52. Fixing plate; 53. Compression spring; 54. Arc groove; 55. Lower cover plate; 56. Clip; 57. Mounting hole; 58. Bolt. Detailed Implementation
[0023] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Many specific details are set forth in the following description to provide a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Those skilled in the art can make similar extensions without departing from the spirit of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.
[0024] like Figure 1 The diagram shows the external structure of the support structure of the energy storage container of this utility model. The support structure includes a support plate 10, a support frame 20, and a buffer device. The support plate 10 is fitted inside the support frame 20. The support plate 10 has a groove 11, and the energy storage container is placed inside the groove 11. The groove 11 can stably engage the energy storage container. Additionally, as shown... Figure 1 As shown, the bottom of the support plate 10 is equipped with a mesh 12, and a receiver (not shown in the figure) is connected to the bottom of the mesh 12. If the energy storage container placed at the bottom leaks vanadium liquid or other electrolytes, the leaked electrolyte liquid will flow through the mesh 12 to the receiver. Regular maintenance personnel can determine whether there is a leak in the container by observing whether there is electrolyte in the receiver. At the same time, it can also prevent the electrolyte from flowing out and polluting the surrounding soil.
[0025] Please see Figure 2 andFigure 3 As shown in the drawings, the buffer device of the utility model is equipped with a buffer 30 and several shock absorbers 50, the buffer device is located between the support disc 10 and the support frame 20, specifically, the buffer 30 is located at the center position of the support frame 20, and the shock absorber 50 is located at the internal top corner of the support frame 20, as shown in the drawings Figure 4 As shown in the drawings, the buffer 30 is equipped with an upper mounting plate 31, an upper pressing block 32, a connecting plate 33, an elastic piece 34, a lower pressing block 35, a lower mounting plate 36, a sliding groove 37, a sliding block 38, an upper rotating shaft 39 and a lower rotating shaft 40, wherein the upper mounting plate 31 is fixed on the bottom surface of the support disc 10 and can be fixedly connected by a screw or directly pasted, the upper end surface of the upper pressing block 32 is fixedly connected with the lower end surface of the upper mounting plate 31, the elastic piece 34 is located between the upper pressing block 32 and the lower pressing block 35, specifically, the upper end of the elastic piece 34 is connected with the bottom surface of the upper pressing block 32, the lower end is connected with the top surface of the lower pressing block 35, and the elastic piece 34 is sleeved in the connecting plate 33, the connecting plate 33 is a similar cylindrical structure with a through hole in the upper and lower portions, and the two sides of the connecting plate 33 are respectively equipped with the sliding groove 37, and the sliding groove 37 is further equipped with the sliding block 38.
[0026] Please continue to refer to Figure 4 As shown in the drawings, the lower pressing block 35 is fixed on the upper end surface of the lower mounting plate 36, and the lower mounting plate 36 is fixed on the inner side of the bottom surface of the support frame 20, four positioning blocks 41 are arranged on the lower end surface of the upper mounting plate 31 and around the upper pressing block 32, four positioning blocks 41 are arranged on the upper end surface of the lower mounting plate 36 and around the lower pressing block 35, and a connecting shaft 42 is arranged between the two longitudinally adjacent positioning blocks 41. The upper end of the upper rotating shaft 39 is rotationally connected with the corresponding connecting shaft 42 on the upper mounting plate 31, the lower end of the upper rotating shaft 39 is rotationally connected with the positioning shaft 381 arranged on the outer side surface corresponding to the sliding block 38, the upper end of the lower rotating shaft 40 is rotationally connected with the positioning shaft 381 arranged on the outer side surface corresponding to the sliding block 38 close to the lower rotating shaft 40, and the lower end of the lower rotating shaft 40 is rotationally connected with the corresponding connecting shaft 42 on the lower mounting plate 36.
[0027] In addition, as shown in the drawings Figure 2 , Figure 3 As shown in the drawings, the buffer device of the utility model is further equipped with a support rod 43, one end of the support rod 43 is fixedly connected with the outer end surface of the sliding groove 37, the other end is movably connected with the inner wall of the side surface corresponding to the support frame 20, the movable connection mode here can be hinged, or a clamping groove structure can be arranged on the inner wall of the side surface of the support frame 20, and the outer end interface of the support rod 43 can move in the up-down direction in the clamping groove, but is limited in the left-right direction, so that the support rod 43 can realize directional movement in the up-down direction, and this structure is the prior art, which will not be described here.
[0028] The buffer 30 will provide a buffering force to counteract the above-mentioned force, and the specific principle is that the energy storage container subjected to the force transmits the force to the support disc 10, and the bottom of the support disc 10 is connected with the upper mounting plate 31, and the force borne by the support disc 10 reaches the elastic member 34 in the connecting plate 33 through the upper mounting plate 31 and the upper pressing block 32, and in the preferred embodiment, the elastic member 34 can be a plurality of rows and columns of high-pressure springs arranged uniformly, so that the elastic member 34 converts the force into elastic potential energy, and in this process, the elastic member 34 will be deformed due to the external force, and the height in the up-down direction is changed, at the same time, the sliding block 38 will be displaced in the sliding groove 37, and the support rod 43 is movably connected with the inner wall of the support frame 20, so that the buffer 30 will not be displaced or deformed, and finally the energy storage container is provided with a stable buffering force, and the effect of preventing vibration is achieved.
[0029] Please refer to Figure 5 As shown in the figure, the shock absorber 50 of the utility model is provided with an upper pull plate 51, a fixed plate 52, a compression spring 53, an arc-shaped groove 54, a lower cover plate 55 and a clamping piece 56, the arc-shaped groove 54 is installed at the lower end face of the fixed plate 52, the upper end of the compression spring 53 is connected with the lower end face of the fixed plate 52 and is located in the arc-shaped groove 54, the clamping piece 56 is fixed at the upper end face of the lower cover plate 55, the compression spring 53 and the arc-shaped groove 54 are located in the clamping piece 56, the lower end face of the compression spring 53 is hinged with the upper end face of the lower cover plate 55, the upper pull plate 51 is provided with a mounting hole 57, the mounting hole 57 is provided with a bolt 58, the bolt 58 is used for mounting the upper pull plate 51 on the bottom surface of the support disc 10, the lower cover plate 55 is also provided with a mounting hole 57, the mounting hole 57 is provided with a bolt 58, and the bolt 58 is used for mounting the lower cover plate 55 on the inner side of the bottom surface of the support frame 20. The shock absorber 50 also utilizes the buffering force of the compression spring 53 to realize the counter-impact of the impact force at the top corner position of the support disc 10, and the cooperation of the buffer 30 and the shock absorber 50 can realize the impact force buffering effect of the full range of the bottom surface of the support disc 10, and the stability of the whole device is improved.
[0030] Through the above technical scheme, the utility model has the beneficial effects that the support structure of the utility model is provided with a buffering device, the buffering device includes the buffer 30 at the middle position and the shock absorber 50 at the top corner position, and the cooperation of the two structures can comprehensively reduce the impact force borne by the energy storage container on the support structure, and the application of the full-vanadium liquid energy storage container is more safe and convenient.
[0031] Obviously, the described embodiments are only part of the embodiments of the present application, not all. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor belong to the scope of protection of the present application.
Claims
1. A support structure for an energy storage container, characterized by, The energy storage container includes a support disc (10), a support frame (20) and a buffer device, the support disc (10) is sleeved in the support frame (20), the buffer device is located between the support disc (10) and the support frame (20), the support disc (10) includes a groove (11), the energy storage container is located in the groove (11), the buffer device includes a buffer (30) and a plurality of shock absorbers (50), the buffer (30) is located at the center position of the support frame (20), the shock absorbers (50) are located at the inner top corners of the support frame (20), the buffer (30) includes an upper mounting plate (31), an upper pressing block (32), a connecting plate (33), an elastic piece (34), a lower pressing block (35), a lower mounting plate (36), a sliding groove (37), a sliding block (38), an upper rotating shaft (39) and a lower rotating shaft (40), the upper end of the elastic piece (34) is connected with the bottom surface of the upper pressing block (32), the lower end is connected with the top surface of the lower pressing block (35), and the elastic piece (34) is sleeved in the connecting plate (33).
2. The support structure for an energy storage container of claim 1, wherein, The upper mounting plate (31) is fixed to the bottom surface of the support disc (10), and the lower mounting plate (36) is fixed to the inner side of the bottom surface of the support frame (20).
3. The support structure for an energy storage container of claim 1, wherein, Four positioning blocks (41) are arranged on the lower end surface of the upper mounting plate (31), four positioning blocks (41) are arranged on the upper end surface of the lower mounting plate (36), a connecting shaft (42) is arranged between two longitudinally adjacent positioning blocks (41), the sliding grooves (37) are fixedly arranged on the two sides of the connecting plate (33), and the sliding grooves (37) are respectively provided with sliding blocks (38).
4. The support structure for an energy storage container of claim 3, wherein, The upper end of the upper rotating shaft (39) is rotationally connected with the corresponding connecting shaft (42) on the upper mounting plate (31), the lower end of the upper rotating shaft (39) is rotationally connected with the positioning shaft (381) arranged on the outer side surface corresponding to the sliding block (38), the upper end of the lower rotating shaft (40) is rotationally connected with the positioning shaft (381) arranged on the outer side surface corresponding to the sliding block (38) adjacent to the lower rotating shaft (40), and the lower end of the lower rotating shaft (40) is rotationally connected with the corresponding connecting shaft (42) on the lower mounting plate (36).
5. The support structure for an energy storage container of claim 1, wherein, The buffer device further includes a support rod (43), one end of the support rod (43) is fixedly connected with the outer end surface of the sliding groove (37), and the other end is movably connected with the inner wall of the side surface of the support frame (20) corresponding to the support rod (43).
6. A support structure for an energy storage container according to any one of claims 1 to 5, wherein, The support disc (10) is provided with a leakage net (12) at the bottom, and the leakage net (12) is provided with a storage device at the bottom.
7. A support structure for an energy storage container according to any one of claims 1 to 5, wherein, The shock absorber (50) includes an upper pull plate (51), a fixed plate (52), a compression spring (53), an arc-shaped groove (54), a lower cover plate (55) and a clamping piece (56).
8. The support structure for an energy storage container of claim 7, wherein, The arc-shaped slot (54) is installed at the lower end surface of the fixed plate (52), the upper end of the compression spring (53) is connected with the lower end surface of the fixed plate (52) and is located in the arc-shaped slot (54), the clamping piece (56) is fixed at the upper end surface of the lower cover plate (55), the compression spring (53) and the arc-shaped slot (54) are located in the clamping piece (56), and the lower end surface of the compression spring (53) is hinged with the upper end surface of the lower cover plate (55).
9. The support structure for an energy storage container of claim 8, wherein, The upper pull plate (51) is provided with a mounting hole (57), the mounting hole (57) is provided with a bolt (58), the bolt (58) is used for mounting the upper pull plate (51) on the bottom surface of the support disc (10), the lower cover plate (55) is also provided with a mounting hole (57), the mounting hole (57) is provided with a bolt (58), and the bolt (58) is used for mounting the lower cover plate (55) on the inner side of the bottom surface of the support frame (20).
Citation Information
Patent Citations
Photovoltaic panel supporting device with drainage structure and energy storage container
CN118677337A