A rack for a new energy storage power station
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-06-17
- Publication Date
- 2026-08-14
AI Technical Summary
首先,储能电池直接安放于设备架内部,电池与架体之间全程为硬性刚性接触,缺少缓冲结构,在电池搬运摆放极易出现相互硬性磕碰的情况,不仅容易造成储能电池外壳破损、内部元件受损,还会磨损设备架架体结构,大幅降低整体防护效果,进而使得设备架的使用防护性不足;
(1)本发明实现电池与架体之间柔性接触的效果,从根源上避免传统刚性接触所造成的电池与架体双双受损的不良情况发生,进而达到大幅度提高设备架整体使用防护性的作用;
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Figure CN122576569A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of equipment rack technology, specifically to an equipment rack for a new energy storage power station. Background Technology
[0002] In the actual construction and operation of new energy storage power stations, a large number of energy storage battery banks are deployed within the station to achieve centralized energy storage and stable distribution. When arranging, assembling, and fixing the energy storage batteries on-site, a dedicated energy storage battery rack must be used for orderly installation and positioning. This rack can arrange multiple energy storage battery banks in a layered and orderly manner.
[0003] Although existing dedicated equipment racks for new energy storage power stations on the market can basically meet the basic needs of daily placement and layered storage of energy storage batteries, there are still obvious drawbacks in actual on-site installation and long-term operation of power stations: First, the energy storage batteries are placed directly inside the equipment rack, and there is a rigid contact between the batteries and the rack throughout the process. Without a buffer structure, the batteries are very likely to collide with each other during handling and placement. This can easily cause damage to the battery shell and internal components, as well as wear and tear on the rack structure, significantly reducing the overall protection effect and making the equipment rack unprotected. Secondly, after the battery is aligned and placed, it is entirely up to the staff to manually push it inward to complete the installation. It is difficult to achieve a smooth and automatic sliding in and pushing. The overall installation process is cumbersome and laborious, with low work efficiency, which increases the manpower input and makes the equipment rack less convenient to use. Finally, the lack of a dedicated positioning and limiting structure after the batteries are in place makes it easy for the placed batteries to shift or shake when other batteries are loaded, when they are touched during on-site construction, or when there are slight impacts from external forces. The neatness of the arrangement is difficult to guarantee, the overall placement stability is poor, and thus the stability of the equipment rack is insufficient.
[0004] Therefore, it is necessary to invent an equipment rack for a new energy storage power station to solve the above problems. Summary of the Invention
[0005] The purpose of this invention is to provide an equipment rack for a new energy storage power station to solve the problems mentioned in the background art.
[0006] To solve the above-mentioned technical problems, the present invention provides the following technical solution: an equipment frame for a new energy storage power station, comprising four supports, each of the four supports having a mounting base fixed at both ends, and a plurality of supports fixed in the middle of the four supports; Each of the supports has a groove in the middle, and a sliding frame is slidably connected to the inner wall of each groove. Each sliding frame has a stabilizing groove in the middle, and a connecting structure is provided on the inner wall of each stabilizing groove. A placement seat is provided on the connecting structure. The connecting structure can move along its own height direction with the placement seat to reserve a buffer space for the placed energy storage battery.
[0007] Preferably, the connection structure includes two stabilizing blocks, each of the two stabilizing blocks having a spring fixed at its disjoint end, each of the two stabilizing blocks having a connecting frame rotatably connected to its upper end, each of the two connecting frames having a connecting block rotatably connected to its other end, and each of the two connecting blocks having a placement seat fixed to its other end, the placement seat having several through slots in its middle.
[0008] Preferably, the outer surfaces of the two stabilizing blocks are slidably connected to the inner walls on both sides of the stabilizing groove, the two stabilizing blocks are fixed to the near ends of the two springs on opposite sides, the two springs are fixed to the inner walls at both ends of the stabilizing groove, the two stabilizing blocks are arranged opposite to each other, and the vertical cross-section of each stabilizing block is I-shaped.
[0009] Preferably, the upper ends of the two stabilizing blocks are rotatably connected to the disjoint ends of the two connecting frames, the proximal ends of the two connecting frames are rotatably connected to the lower ends of the two connecting blocks, the upper ends of the two connecting blocks are fixed to both sides of the placement seat, and a plurality of through slots penetrate the middle of the placement seat.
[0010] Preferably, the sliding frame has a through groove in the middle, and each of the two stabilizing blocks has a through hole in the middle. A sliding rod is slidably connected to the inner wall of each of the two through holes. A sliding block is fixed to one end of each of the two sliding rods. A rack is fixed to the lower end of each of the two sliding blocks. A gear is meshed with each of the two racks. A threaded rod is fixed to the middle of each of the two gears. A stabilizing disc is fixed to one side of each of the two threaded rods. A stabilizing seat is rotatably connected to the outer surface of each of the two stabilizing discs. A limit disc is fixed to the other end of each of the two threaded rods. A threaded frame is threadedly connected to the outer surface of each of the two threaded rods. A limit groove is provided on one side of each support.
[0011] Preferably, the outer surfaces of the two sliding rods are slidably connected to the inner walls of the two through holes, the outer surfaces of the two sliding rods are slidably connected to the inner walls of the two through slots, one end of the two sliding rods is fixed to one side of the two sliding blocks, the outer surfaces of the two sliding blocks are slidably connected to the inner walls of the two sides of the limiting slot, and the vertical cross-section of the two sliding blocks is cross-shaped.
[0012] Preferably, the lower ends of the two sliding blocks are fixed to the upper ends of the two racks, the lower sides of the two racks are meshed with two gears, the middle parts of the two gears are fixed to one end of the two threaded rods, one side of the two threaded rods is fixed to the middle of the two stabilizing discs, the outer surfaces of the two stabilizing discs are rotatably connected to the inner walls of the two stabilizing seats, the upper ends of the two stabilizing seats are fixed to both sides of the support, the other ends of the two threaded rods are fixed to the middle of the two limiting discs, the outer surfaces of the two threaded rods are threadedly connected to both sides of the threaded frame, the upper end of the threaded frame is fixed to the lower side of the sliding frame, the outer surface of the sliding frame is slidably connected to the inner wall of the slide groove, and the slide groove passes through the middle of the support.
[0013] Preferably, both sides of the sliding frame are fixed with fixed rods, and the outer surfaces of the two fixed rods are slidably connected with guide frames. The middle of the two guide frames is provided with guide grooves. The two guide frames are detachably installed with limit frames by bolts on the opposite sides. Several rubber pads are fixed at the near ends of the two limit frames. The support is provided with frame grooves on both sides.
[0014] Preferably, the lower ends of the two fixed rods are fixed to both sides of the sliding frame, the outer surfaces of the two fixed rods are slidably connected to the inner walls of the two frame slots, the two frame slots pass through both sides of the support, the outer surfaces of the two fixed rods are slidably connected to the inner walls of the two guide slots, and the two guide slots are inclined and pass through the middle of the two guide frames.
[0015] Preferably, the outer surfaces of the two guide frames are slidably connected to the inner walls of the two frame slots, the opposite ends of the two guide frames are detachably installed at the lower ends of the two limit frames by bolts, the vertical cross-sections of the two limit frames are both L-shaped, the near ends of the two limit frames are fixed on the opposite sides of several rubber pads, and the two limit frames are arranged opposite each other.
[0016] Compared with the prior art, the beneficial effects of the present invention are: (1) The present invention achieves the effect of flexible contact between the battery and the frame, thereby avoiding the adverse situation of damage to both the battery and the frame caused by traditional rigid contact, and thus greatly improving the overall protective performance of the equipment frame. (2) The present invention achieves the effect of automatic storage and movement, without the need for manual pushing and adjustment by staff, effectively simplifying the on-site installation and layout process, reducing the amount of manual work, and thus significantly improving the overall ease of use of the equipment rack; (3) The present invention achieves the effect of automatic and accurate positioning, effectively eliminating the problem of displacement and shaking after the battery is placed, and further improving the overall stability of the equipment rack. Attached Figure Description
[0017] Figure 1 This is an overall structural diagram of the present invention; Figure 2 This is a schematic diagram of the sliding frame structure of the present invention; Figure 3 For the present invention Figure 2 Enlarged view of the structure of section A in the middle; Figure 4 This is a schematic diagram of the threaded frame structure of the present invention; Figure 5 For the present invention Figure 4 Enlarged view of the structure of section B in the middle; Figure 6 This is a schematic diagram of the limiting frame structure of the present invention; Figure 7 For the present invention Figure 6 Enlarged view of the C-section structure; Figure 8 This is a partial structural diagram of the present invention.
[0018] In the diagram: 1. Bracket; 2. Mounting base; 3. Support; 4. Slide groove; 5. Sliding frame; 6. Stabilizing groove; 7. Stabilizing block; 8. Spring; 9. Connecting frame; 10. Connecting block; 11. Placement seat; 12. Through groove; 13. Through slot; 14. Through hole; 15. Sliding rod; 16. Sliding block; 17. Rack; 18. Gear; 19. Threaded rod; 20. Stabilizing plate; 21. Stabilizing seat; 22. Limiting plate; 23. Threaded frame; 24. Limiting groove; 25. Fixing rod; 26. Guide frame; 27. Guide groove; 28. Limiting frame; 29. Rubber pad; 30. Frame groove. Detailed Implementation
[0019] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0020] Example 1 This embodiment provides an equipment rack for a new energy storage power station; Please see Figure 1 - Figure 8As shown, it includes four supports 1, each with a mounting base 2 fixed at both ends, and several supports 3 fixed in the middle of each support 1; each support 3 has a groove 4 in the middle, and a sliding frame 5 is slidably connected to the inner wall of each groove 4; each sliding frame 5 has a stabilizing groove 6 in the middle, and a connecting structure is provided on the inner wall of each stabilizing groove 6. The connecting structure includes two stabilizing blocks 7, each with a spring 8 fixed at the disjoint end of each stabilizing block 7, a connecting frame 9 rotatably connected to the upper end of each stabilizing block 7, a connecting block 10 rotatably connected to the other end of each connecting frame 9, and a placement seat 11 fixed to the other end of each connecting block 10. Several through grooves 12 are provided in the middle of the placement seat 11.
[0021] Please refer to it again. Figure 1 - Figure 8 As shown, the outer surfaces of the two stabilizing blocks 7 are slidably connected to the inner walls of both sides of the stabilizing groove 6. The two stabilizing blocks 7 are fixed to the near ends of the two springs 8 on opposite sides. The two springs 8 are fixed to the inner walls of both ends of the stabilizing groove 6 on opposite sides. The two stabilizing blocks 7 are arranged opposite each other. The vertical cross-section of each stabilizing block 7 is I-shaped. The upper ends of the two stabilizing blocks 7 are rotatably connected to the far ends of the two connecting frames 9. The near ends of the two connecting frames 9 are rotatably connected to the lower ends of the two connecting blocks 10. The upper ends of the two connecting blocks 10 are fixed to both sides of the placement base 11. Several through slots 12 pass through the middle of the placement base 11.
[0022] The specific implementation process is as follows: When placing the energy storage battery onto the equipment rack, the energy storage battery is placed in a top-to-bottom order. By placing the energy storage battery on the placement seat 11, the placement seat 11 is pressed down. The downward movement of the placement seat 11 drives the connecting blocks 10 fixed on both sides to move down synchronously. The two downward-moving connecting blocks 10 drive the two connecting frames 9 connected to the lower end to rotate and drive the two stabilizing blocks 7 connected to the other end of the two connecting frames 9. Under the limiting and guiding action of the inner wall of the stabilizing groove 6 opened in the middle of the sliding frame 5, the reverse sliding operation is carried out smoothly. The two stabilizing blocks 7 that slide in the opposite direction and move away from each other compress the two high-strength springs 8 fixed at the opposite ends. The two compressed springs 8 gradually generate sufficient elastic support as the compression increases, which can effectively offset the contact impact force generated during battery placement and achieve the effect of flexible contact between the battery and the frame. This avoids the adverse situation of damage to both the battery and the frame caused by traditional rigid contact from the root, thereby greatly improving the overall protective function of the equipment rack.
[0023] Example 2 Please see Figure 1 - Figure 8 As shown, an automatic storage and relocation function has been added based on Embodiment 1; Please refer to it again. Figure 1 - Figure 8As shown, a through groove 13 is provided in the middle of the sliding frame 5, and through holes 14 are provided in the middle of the two stabilizing blocks 7. Sliding rods 15 are slidably connected to the inner walls of the two through holes 14. Sliding blocks 16 are fixed to one end of the two sliding rods 15. Racks 17 are fixed to the lower ends of the two sliding blocks 16. Gears 18 are meshed with the two racks 17. Threaded rods 19 are fixed to the middle of the two gears 18. Stabilizing discs 20 are fixed to one side of the two threaded rods 19. Stabilizing seats 21 are rotatably connected to the outer surfaces of the two stabilizing discs 20. Limiting discs 22 are fixed to the other ends of the two threaded rods 19. Threaded frames 23 are threadedly connected to the outer surfaces of the two threaded rods 19. One side of the support 3 has... The limiting groove 24 has two sliding rods 15 whose outer surfaces are slidably connected to the inner walls of two through holes 14 and two through grooves 13. One end of each sliding rod 15 is fixed to one side of two sliding blocks 16, and the outer surfaces of the two sliding blocks 16 are slidably connected to the inner walls of both sides of the limiting groove 24. The vertical cross-sections of the two sliding blocks 16 are both cross-shaped. The lower ends of the two sliding blocks 16 are fixed to the upper ends of two racks 17. The lower sides of the two racks 17 are meshed with two gears 18. The middle of the two gears 18 is fixed to one end of two threaded rods 19, and one side of the two threaded rods 19 is fixed to the middle of two stabilizing discs 20. The outer surfaces of the two stabilizing discs 20 can rotate. The two stabilizers 21 are connected to the inner walls of the two stabilizers 21. The upper ends of the two stabilizers 21 are fixed to both sides of the support 3. The other ends of the two threaded rods 19 are fixed to the middle of the two limiting discs 22. The outer surfaces of the two threaded rods 19 are threadedly connected to both sides of the threaded frame 23. The upper end of the threaded frame 23 is fixed to the lower side of the sliding frame 5. The outer surface of the sliding frame 5 is slidably connected to the inner wall of the slide groove 4. The slide groove 4 passes through the middle of the support 3. Two racks 17 and two gears 18 are set to mesh symmetrically to ensure that the resistance encountered by the two stabilizers 7 during sliding is consistent. Due to the complex transmission structure of this device, a single set of gears 18 and racks 17 is prone to uneven force on one side, transmission jamming, offset tilting, etc. The problem is that the sliding speed of one side of the stabilizing block 7 is too fast, while the sliding resistance of the other side is stuck, which seriously affects the overall transmission coordination. The symmetrical double rack 17 and double gear 18 structure can utilize the synchronous meshing characteristics of the gear 18 and rack 17 to balance the mechanical friction resistance and transmission load on both sides, so that the stabilizing blocks 7 on both sides maintain the same sliding speed and displacement stroke, and eliminate the situation of uneven load. At the same time, the symmetrical transmission structure can offset the lateral torque generated during the transmission process, and prevent the sliding rod 15 and sliding block 16 from being skewed and stuck, ensuring that the entire transmission mechanism operates smoothly, synchronously and stably, and providing a reliable structural foundation for subsequent automatic storage and centering positioning actions.
[0024] The specific implementation process is as follows: By placing the energy storage battery on the placement seat 11, the placement seat 11 is pressed down and moves downward. The downward-moving placement seat 11 drives the two stabilizing blocks 7 to move away from each other through the two connecting blocks 10 and the two connecting frames 9. The two stabilizing blocks 7 move away from each other by relying on the through holes 14 opened in their respective middles to drive the two sliding rods 15 that are slidably connected to their inner walls. The two stabilizing blocks 7 move away from each other through the through groove 13 opened in the middle of the sliding frame 5. The spring 8 equipped in this device only plays a buffering role and does not set an excessive pre-tightening force to form a strong obstruction, so as to ensure the smooth transmission of gravity driving force. Two mutually distancing sliding rods 15 drive two sliding blocks 16 fixed at one end to move away from each other under the limitation of the inner wall of the limiting groove 24 opened in the middle of the support 3. The two mutually distancing sliding blocks 16 drive two racks 17 fixed at the lower end to move away from each other synchronously. The two mutually distancing racks 17 drive two meshing gears 18 to rotate in opposite directions. The two counter-rotating gears 18 drive two threaded rods 19 fixed in the middle to rotate in opposite directions. The threaded rods 19 adopt a large lead coarse thread structure, which greatly reduces the transmission resistance and makes it easier to drive the operation by gravity. Two counter-rotating threaded rods 19 rotate synchronously in opposite directions under the limiting of two stabilizing discs 20 fixed on one side and the inner walls of stabilizing seats 21 fixed on both sides of the support 3. Under the limiting of the limiting disc 22 fixed at the other end, the two counter-rotating threaded rods 19 drive the threaded frame 23 connected to the outer surface to move. The moving threaded frame 23 drives the sliding frame 5 fixed at the upper end to slide under the limiting of the inner wall of the sliding groove 4 opened in the middle of the support 3. The sliding frame 5 slides smoothly towards the support 3, and after the energy storage battery compression placement seat 11 is pressed down to the designated position, the sliding frame 5 can be completely stored and slid into the support 3. The entire transmission and return action is completed by relying on the battery's own gravity. It autonomously completes the battery pushing and storage process, achieving the effect of automatic storage and movement. No manual pushing and adjustment by the staff is required throughout the process, which effectively simplifies the on-site installation and layout process, reduces the amount of manual work, and thus significantly improves the overall ease of use of the equipment frame.
[0025] Example 3 Please see Figure 1 - Figure 8 As shown, an automatic precise positioning function has been added based on Embodiment 1; Please refer to it again. Figure 1 - Figure 8As shown, both sides of the sliding frame 5 are fixed with fixing rods 25. Guide frames 26 are slidably connected to the outer surfaces of both fixing rods 25. Guide grooves 27 are provided in the middle of both guide frames 26. Limiting frames 28 are detachably installed on the opposite sides of both guide frames 26 via bolts. Several rubber pads 29 are fixed to the near ends of both limiting frames 28. Frame grooves 30 are provided on both sides of the support 3. The lower ends of the two fixing rods 25 are fixed to both sides of the sliding frame 5. The outer surfaces of the two fixing rods 25 are slidably connected to the inner walls of the two frame grooves 30. The groove 30 runs through both sides of the support 3. The outer surfaces of the two fixed rods 25 are slidably connected to the inner walls of the two guide grooves 27. The two guide grooves 27 are inclined and run through the middle of the two guide frames 26. The outer surfaces of the two guide frames 26 are slidably connected to the inner walls of the two frame grooves 30. The two guide frames 26 are detachably installed at the lower ends of the two limit frames 28 by bolts. The vertical cross-section of the two limit frames 28 is L-shaped. The near ends of the two limit frames 28 are fixed to the opposite sides of several rubber pads 29. The two limit frames 28 are arranged opposite to each other.
[0026] The specific implementation process is as follows: By placing the energy storage battery on the placement seat 11, the placement seat 11 is pressed down. The downward-moving placement seat 11 drives the two stabilizing blocks 7 to move away from each other through two connecting blocks 10 and two connecting frames 9. The two stabilizing blocks 7 are driven by sliding rod 15, sliding block 16, rack 17, gear 18 and threaded rod 19 in sequence, smoothly driving the sliding frame 5 to complete the translation operation. During the movement, the sliding frame 5 synchronously drives the fixed rods 25 on both sides to move together. The two moving fixed rods 25 maintain smooth sliding under the limiting constraint of the inner wall of the frame groove 30 opened on both sides of the support 3. During the sliding process, relying on the sliding guide frame 26 inside the frame groove 30, and cooperating with the guide groove 27 opened at the middle of the guide frame 26, the two guide frames 26 are driven to move closer to each other. Two guide frames 26 approaching each other cause their outer detachable positioning frames 28, which are attached by bolts, to move towards each other simultaneously. Workers can flexibly disassemble and replace the positioning frames 28 with appropriate sizes according to the actual dimensions of the energy storage battery being placed. Multiple rubber pads 29 fixed inside the positioning frames 28 simultaneously move closer together. At the same moment the energy storage battery is placed in position by pressing down on the base 11 and the sliding frame 5 slides to the designated position, the two positioning frames 28, with the help of the rubber pads 29, flexibly adhere to both sides of the energy storage battery, quickly completing the centered clamping and positioning of the battery. The entire process relies on gravity linkage to achieve automatic and precise positioning, effectively preventing the battery from shifting and shaking after placement, further improving the overall stability of the equipment rack.
[0027] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. An equipment rack for a new energy storage power station, comprising four supports (1), characterized in that: Each of the four brackets (1) has a mounting base (2) fixed at both ends, and several supports (3) fixed in the middle of the four brackets (1). Each of the supports (3) has a groove (4) in the middle, and a sliding frame (5) is slidably connected to the inner wall of each groove (4). Each sliding frame (5) has a stabilizing groove (6) in the middle, and a connecting structure is provided on the inner wall of each stabilizing groove (6). A placement seat (11) is provided on the connecting structure. The connecting structure can move with the placement seat (11) in its own height direction to reserve a buffer space for the placed energy storage battery.
2. The equipment rack for a new energy storage power station according to claim 1, characterized in that: The connection structure includes two stabilizing blocks (7), each of which is fixed with a spring (8) at its disjoint end. Each of the two stabilizing blocks (7) is rotatably connected to a connecting frame (9) at its upper end. Each of the two connecting frames (9) is rotatably connected to a connecting block (10) at its other end. Each of the two connecting blocks (10) is fixed with a placement seat (11) at its other end. The placement seat (11) has several through slots (12) in the middle.
3. The equipment rack for a new energy storage power station according to claim 2, characterized in that: The outer surfaces of the two stabilizing blocks (7) are slidably connected to the inner walls on both sides of the stabilizing groove (6). The two stabilizing blocks (7) are fixed on the near ends of the two springs (8) on opposite sides. The two springs (8) are fixed on the inner walls at both ends of the stabilizing groove (6). The two stabilizing blocks (7) are arranged opposite to each other. The vertical cross-section of each stabilizing block (7) is I-shaped.
4. The equipment rack for a new energy storage power station according to claim 2, characterized in that: The upper ends of the two stabilizing blocks (7) are rotatably connected to the opposite ends of the two connecting frames (9), and the near ends of the two connecting frames (9) are rotatably connected to the lower ends of the two connecting blocks (10). The upper ends of the two connecting blocks (10) are fixed on both sides of the placement seat (11), and several through slots (12) pass through the middle of the placement seat (11).
5. The equipment rack for a new energy storage power station according to claim 2, characterized in that: The sliding frame (5) has a through groove (13) in the middle, and the two stabilizing blocks (7) each have a through hole (14) in the middle. The inner walls of the two through holes (14) are slidably connected to sliding rods (15). One end of each sliding rod (15) is fixed to a sliding block (16). The lower end of each sliding block (16) is fixed to a rack (17). The two racks (17) are meshed with gears (18). The middle of each gear (18) is fixed to a threaded rod (19). One side of each threaded rod (19) is fixed to a stabilizing plate (20). The outer surface of each stabilizing plate (20) is rotatably connected to a stabilizing seat (21). The other end of each threaded rod (19) is fixed to a limiting plate (22). The outer surface of each threaded rod (19) is threadedly connected to a threaded frame (23). One side of each support (3) has a limiting groove (24).
6. The equipment rack for a new energy storage power station according to claim 5, characterized in that: The outer surfaces of the two sliding rods (15) are slidably connected to the inner walls of the two through holes (14), the outer surfaces of the two sliding rods (15) are slidably connected to the inner walls of the two through grooves (13), one end of the two sliding rods (15) is fixed to one side of the two sliding blocks (16), the outer surfaces of the two sliding blocks (16) are slidably connected to the inner walls of the two sides of the limiting groove (24), and the vertical cross-section of the two sliding blocks (16) is cross-shaped.
7. The equipment rack for a new energy storage power station according to claim 5, characterized in that: The lower ends of the two sliding blocks (16) are fixed to the upper ends of the two racks (17). The lower sides of the two racks (17) are meshed with the two gears (18). The middle of the two gears (18) is fixed to one end of the two threaded rods (19). One side of the two threaded rods (19) is fixed to the middle of the two stabilizing discs (20). The outer surfaces of the two stabilizing discs (20) are rotatably connected to the inner walls of the two stabilizing seats (21). The upper ends of the two stabilizing seats (21) are fixed to both sides of the support (3). The other ends of the two threaded rods (19) are fixed to the middle of the two limiting discs (22). The outer surfaces of the two threaded rods (19) are threadedly connected to both sides of the threaded frame (23). The upper end of the threaded frame (23) is fixed to the lower side of the sliding frame (5). The outer surface of the sliding frame (5) is slidably connected to the inner wall of the slide groove (4). The slide groove (4) passes through the middle of the support (3).
8. The equipment rack for a new energy storage power station according to claim 2, characterized in that: The sliding frame (5) is fixed with a fixed rod (25) on both sides. The outer surfaces of the two fixed rods (25) are slidably connected with guide frames (26). The middle of the two guide frames (26) is provided with guide grooves (27). The two guide frames (26) are detachably installed with limit frames (28) on the opposite sides by bolts. Several rubber pads (29) are fixed at the near ends of the two limit frames (28). The support (3) is provided with frame grooves (30) on both sides.
9. The equipment rack for a new energy storage power station according to claim 8, characterized in that: The lower ends of the two fixed rods (25) are fixed to both sides of the sliding frame (5). The outer surfaces of the two fixed rods (25) are slidably connected to the inner walls of the two frame slots (30). The two frame slots (30) pass through both sides of the support (3). The outer surfaces of the two fixed rods (25) are slidably connected to the inner walls of the two guide slots (27). The two guide slots (27) are inclined and pass through the middle of the two guide frames (26).
10. The equipment rack for a new energy storage power station according to claim 8, characterized in that: The outer surfaces of the two guide frames (26) are slidably connected to the inner walls of the two frame slots (30). The two guide frames (26) are detachably installed at the lower ends of the two limit frames (28) by bolts. The vertical cross-sections of the two limit frames (28) are both L-shaped. The near ends of the two limit frames (28) are fixed on the opposite sides of several rubber pads (29). The two limit frames (28) are arranged opposite to each other.