High-voltage centralized control prefabricated cabin for energy storage power station
By designing a liftable cover and ventilation hood in the prefabricated cabin, and using vibration pins to remove dirt from the windows, the problem of low heat dissipation efficiency in existing prefabricated cabins has been solved, achieving efficient heat dissipation and system stability.
Patent Information
- Application Number
- CN202520298678.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-24
- Publication Date
- 2026-01-23
- Estimated Expiration
- 2035-02-24
AI Technical Summary
Dust easily accumulates in the heat dissipation windows of existing prefabricated cabins, leading to reduced heat dissipation efficiency. Existing heat dissipation methods that rely on fans are not very effective.
A prefabricated high-voltage central control cabin for energy storage power stations is designed, featuring a liftable cover and ventilation hood, combined with side wings and rear vibration pins to remove window deposits through high-frequency vibration, ensuring the cleanliness of the heat exchange windows.
It achieves efficient heat dissipation inside the prefabricated cabin, keeps the heat exchange windows clean, avoids dust accumulation, and ensures stable system operation.
Smart Images

Figure CN223828906U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of energy storage prefabricated cabin, specifically to a high pressure centralized control prefabricated cabin for energy storage power station. BACKGROUND
[0002] The prefabricated cabin is indispensable in the integrated energy storage of the energy storage power station, and the modular prefabricated cabin design is not only convenient for operation and maintenance, but also can be quickly deployed to improve system efficiency and enhance the stability of the power grid.
[0003] The existing prefabricated cabin has certain disadvantages during actual use, a large number of circuit control devices need to be deployed in the prefabricated cabin body, and therefore the heat energy inside the sealed cabin body rises rapidly, but the heat dissipation of the existing prefabricated cabin body mainly relies on the heat dissipation window on the side, and in this way, the heat dissipation completely relies on the air fan heat exchange, and during the heat exchange, the dust and impurities in the air can be adsorbed and settled in the gap of the window, and in severe cases, the window heat dissipation efficiency can be reduced.
[0004] In view of this, a high pressure centralized control prefabricated cabin for energy storage power station is designed to solve the above problems. UTILITY MODEL CONTENTS
[0005] The utility model aims at solving one of the technical problems existing in the prior art or related art.
[0006] To this end, the utility model adopts the technical scheme that:
[0007] A high pressure centralized control prefabricated cabin for energy storage power station, comprising a prefabricated cabin body mechanism, a gas exchange and dirt removal mechanism arranged on the prefabricated cabin body mechanism, and a power-assisted stability enhancement mechanism arranged between the prefabricated cabin body mechanism and the gas exchange and dirt removal mechanism, wherein the prefabricated cabin body mechanism comprises a prefabricated cabin and an anti-disengagement plate arranged on one side of the top end of the prefabricated cabin, the gas exchange and dirt removal mechanism comprises a cover arranged on the top end of the prefabricated cabin, a gas exchange cover mounted on the bottom of the cover, two side wing baffle plates mounted on the inner walls on both sides of the prefabricated cabin, a back baffle plate mounted on the inner wall on the back of the prefabricated cabin, a side wing vibration pin arranged in the side wing baffle plate, and a back vibration pin arranged in the back baffle plate.
[0008] In a preferred example, the bottom of the cover can be further configured to have a plurality of rectangular grooves;
[0009] The bottom end of the front of the gas exchange cover is provided with a raised backing plate, and the anti-disengagement plate is located directly above the raised backing plate;
[0010] Heat exchange windows are arranged on both sides and the back of the gas exchange cover;
[0011] The outer ends of the side wing vibration pin and the back vibration pin both penetrate into the heat exchange window.
[0012] In a preferred embodiment, the present invention can be further configured such that: limit slots are provided inside both the side wing baffle and the back baffle, and evenly distributed pads are installed at the bottom of both the side wing baffle and the back baffle;
[0013] Two limiting posts are installed on both the side wing baffle and the rear baffle, and springs are provided on the outside of the limiting posts.
[0014] In a preferred embodiment, the present invention can be further configured such that the prefabricated cabin mechanism also includes hydraulic components disposed on the prefabricated cabin.
[0015] The prefabricated compartment has two side drainage grooves on both sides and a back drainage groove on the back.
[0016] The inner wall of the prefabricated cabin is fitted with two symmetrically distributed pads.
[0017] In a preferred embodiment, the present invention can be further configured as follows: the assist and stabilization mechanism includes a lever arm movably mounted on the foot pad, a base movably mounted on the top end of the lever arm, and a suspension provided at the other end of the base;
[0018] The suspension is mounted at the bottom of the hood;
[0019] The lever arm has a slot inside.
[0020] In a preferred embodiment, the present invention can be further configured such that: a guide rod is installed in the slot inside the lever arm, and an adapter is movably installed on the outside of the guide rod;
[0021] A tension spring is connected to the adapter.
[0022] In a preferred embodiment, the present invention can be further configured such that: the base is composed of an I-shaped end and a slider, and the slider is adapted to extend into a slide rail inside the suspension;
[0023] The top of the suspension has two symmetrically distributed supports at both ends.
[0024] In a preferred embodiment, the present invention can be further configured such that both the side wing vibration pin and the back vibration pin are made of stainless steel, and the triangular end faces of the side wing vibration pin and the back vibration pin are adapted to penetrate into the heat exchange window inside the cover.
[0025] By adopting the above technical solution, the beneficial effects achieved by this utility model are as follows:
[0026] 1. This utility model sets the top cover of the existing prefabricated cabin fixed structure as a freely lifting and lowering machine cover, and sets a ventilation hood at the bottom of the machine cover. When the ventilation hood is raised and exposed, the heat energy inside the prefabricated cabin can rise directly and be released to the outside. During the heat dissipation, the dirt adsorbed in the ventilation hood window can be squeezed out by three vibrating pins during repeated raising and lowering. The squeezed dirt is quickly transferred to the outside under the guidance of three descaling grooves, thereby ensuring the cleanliness of the heat exchange window and effective heat dissipation at all times. Attached Figure Description
[0027] Figure 1 This is a schematic diagram illustrating the use of this utility model;
[0028] Figure 2 This is a bottom view of the present invention;
[0029] Figure 3 This is a schematic diagram of the prefabricated cabin mechanism of this utility model;
[0030] Figure 4 This is a partial schematic diagram of the present invention;
[0031] Figure 5 This is a schematic diagram of the stabilizing mechanism of this utility model;
[0032] Figure 6 This is a schematic diagram of the ventilation and descaling mechanism of this utility model;
[0033] Figure 7 This utility model Figure 6 Enlarged diagram of point A in the middle.
[0034] Figure label:
[0035] 100. Prefabricated cabin structure; 110. Prefabricated cabin; 120. Hydraulic components; 130. Side drainage channel; 140. Rear drainage channel; 150. Foot pad; 160. Anti-detachment plate;
[0036] 200. Power steering mechanism; 210. Lever arm; 220. Guide rod; 230. Adapter; 240. Tension spring; 250. Base; 260. Suspension.
[0037] 300. Ventilation and descaling mechanism; 310. Ventilation hood; 320. Machine cover; 330. Side wing baffle; 340. Rear baffle; 350. Side wing vibration pin; 360. Rear vibration pin; 370. Limiting post; 380. Spring. Detailed Implementation
[0038] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to specific embodiments and accompanying drawings. It should be noted that, unless otherwise specified, the embodiments and features of the present utility model can be combined with each other.
[0039] It should be understood that these descriptions are merely exemplary and not intended to limit the scope of this invention.
[0040] The following describes, with reference to the accompanying drawings, some embodiments of the present invention, a high-voltage centralized control prefabricated cabin for an energy storage power station.
[0041] Example 1:
[0042] Combination Figures 1-7 As shown, the present invention provides a high-voltage centralized control prefabricated compartment for energy storage power stations, including a prefabricated compartment body mechanism 100, an air exchange and descaling mechanism 300 disposed on the prefabricated compartment body mechanism 100, and an assist and stabilization mechanism 200 disposed between the prefabricated compartment body mechanism 100 and the air exchange and descaling mechanism 300.
[0043] The prefabricated cabin mechanism 100 includes a prefabricated cabin 110, an anti-detachment plate 160 disposed on one side of the top of the prefabricated cabin 110, and a hydraulic component 120 disposed on the prefabricated cabin 110.
[0044] The prefabricated compartment 110 has two side drainage grooves 130 on both sides and a back drainage groove 140 on the back.
[0045] The inner wall of the prefabricated cabin 110 is equipped with two symmetrically distributed feet 150;
[0046] The stability-enhancing mechanism 200 includes a lever arm 210 movably mounted on a foot pad 150, a base 250 movably mounted on the top of the lever arm 210, and a suspension 260 provided at the other end of the base 250.
[0047] The suspension 260 is mounted on the bottom of the hood 320;
[0048] The lever arm 210 has a slot inside;
[0049] A guide rod 220 is installed in the slot inside the lever arm 210, and an adapter 230 is movably installed on the outside of the guide rod 220.
[0050] A tension spring 240 is connected to the adapter 230;
[0051] The ventilation and descaling mechanism 300 includes a cover 320 at the top of the prefabricated compartment 110, a ventilation hood 310 at the bottom of the cover 320, two side wing baffles 330 on the inner walls of both sides of the prefabricated compartment 110, a back baffle 340 on the inner wall of the back of the prefabricated compartment 110, a side wing vibration pin 350 in the side wing baffle 330, and a back vibration pin 360 in the back baffle 340.
[0052] Example 2:
[0053] Combination Figure 3 and Figure 5 As shown, based on Embodiment 1, the base 250 is composed of an I-shaped end and a slider, and the slider is adapted to pass through the slide rail inside the suspension 260;
[0054] The top of the suspension 260 has two symmetrically distributed brackets at both ends.
[0055] Preferably, the two brackets at the top of the suspension 260 are bolted to two rectangular grooves at the bottom of the hood 320;
[0056] The tension spring 240 is connected to two adapters 230 at both ends. In the initial state, the tension spring 240 will pull the two lever arms 210 to fold and retract into the cavity of the prefabricated cabin 110. When the two lever arms 210 are vertically flipped, the lever arms 210 can provide stable support for the suspension 260. At this time, the hood 320 rises to its maximum height.
[0057] Example 3:
[0058] Combination Figures 3-7 As shown, in the above embodiment, the bottom of the cover 320 has multiple rectangular grooves.
[0059] A raised pad is provided at the bottom of the front of the ventilation hood 310, and the anti-detachment plate 160 is located directly above the raised pad.
[0060] Heat exchange windows are provided on both sides and the back of the ventilation hood 310.
[0061] Preferably, the anti-detachment plate 160 has symmetrically distributed screw holes at both ends, and the anti-detachment plate 160 is fixedly installed on the prefabricated cabin 110 by two sets of bolts. When the ventilation hood 310 rises to the highest position, the protruding pad at the bottom of the front of the ventilation hood 310 can fit and adhere to the bottom of the anti-detachment plate 160.
[0062] The outer ends of both the side wing vibration pin 350 and the rear vibration pin 360 extend into the heat exchange window;
[0063] Both the side wing baffle 330 and the rear baffle 340 have limit slots inside, and both the side wing baffle 330 and the rear baffle 340 have evenly distributed pads at their bottom ends.
[0064] Two limiting posts 370 are installed on both the side wing baffle 330 and the rear baffle 340, and springs 380 are provided on the outside of the limiting posts 370.
[0065] Both the side wing vibration pin 350 and the rear vibration pin 360 are made of stainless steel, and the triangular end faces of the side wing vibration pin 350 and the rear vibration pin 360 are adapted to penetrate into the heat exchange window inside the cover 320.
[0066] Preferably, the heat exchange windows on both sides of the ventilation hood 310 are symmetrical with the two side wing baffles 330, and the rear baffle 340 is symmetrical with the heat exchange window on the back of the ventilation hood 310. As the ventilation hood 310 moves up and down along the top of the prefabricated cabin 110, the heat exchange windows press against the triangular end faces of the side wing vibration pins 350 and the rear vibration pins 360, and the compressed side wing vibration pins 350 and the rear vibration pins 360 will contract toward the inner cavity of the prefabricated cabin 110.
[0067] With the high-frequency vibration of the side wing vibration pin 350 and the rear vibration pin 360, the dirt accumulated in the heat exchange window inside the ventilation hood 310 can be effectively squeezed out, thereby ensuring that the heat exchange window is always clean, which facilitates efficient heat exchange in the cavity of the prefabricated cabin 110.
[0068] The working principle and usage process of this utility model are as follows: When the device is installed at a designated location in an energy storage power station, the frequency of opening and closing of the cover 320 is controlled according to whether the area where the device is installed is indoors or outdoors.
[0069] When the device is installed indoors, the hydraulic component 120 can be operated until the hydraulic rod inside the hydraulic component 120 is lifted upwards, pushing the cover 320 to a certain height. At this time, the heat exchange windows opened on both sides and the back of the ventilation hood 310 can be exposed. At this time, through the gap between the two side baffles 330 and one side vibration pin 350 and the inner wall of the prefabricated cabin 110, the heat energy generated in the cavity of the prefabricated cabin 110 can be released outwards through the gap to the exposed heat exchange windows of the ventilation hood 310. This process is located indoors and has less dirt.
[0070] When the device is installed outdoors, due to the interference of hot and cold air currents and static electricity inside and outside the device, particulate matter in the air can easily be adsorbed into the heat exchange window of the ventilation hood 310. By operating the hydraulic component 120 at regular intervals, as the internal hydraulic rod drives the cover 320 to rise and fall regularly, the outer ends of the side wing vibration pin 350 and the rear vibration pin 360 are obliquely pressed and will contract along the heat exchange window. The final contraction process will apply a lateral extrusion force to the heat exchange window inside the ventilation hood 310 and apply a resonance effect to the ventilation hood 310. This can effectively ensure that the dirt accumulated in the heat exchange window is effectively removed and that the heat exchange window remains unobstructed during the regular rise and fall.
[0071] Although embodiments of the present invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the claims and their equivalents.
Claims
1. A prefabricated high-voltage central control module for an energy storage power station, comprising a prefabricated module body structure (100), characterized in that, It also includes a ventilation and descaling mechanism (300) disposed on the prefabricated cabin mechanism (100) and a boosting and stabilizing mechanism (200) disposed between the prefabricated cabin mechanism (100) and the ventilation and descaling mechanism (300); The prefabricated cabin mechanism (100) includes a prefabricated cabin (110) and an anti-detachment plate (160) disposed on one side of the top of the prefabricated cabin (110); The ventilation and descaling mechanism (300) includes a cover (320) at the top of the prefabricated compartment (110), a ventilation hood (310) at the bottom of the cover (320), two side wing baffles (330) on the inner walls of both sides of the prefabricated compartment (110), a back baffle (340) on the inner wall of the back of the prefabricated compartment (110), a side wing vibration pin (350) in the side wing baffle (330), and a back vibration pin (360) in the back baffle (340).
2. The prefabricated high-voltage central control module for an energy storage power station according to claim 1, characterized in that, The bottom of the cover (320) has multiple rectangular grooves; The ventilation hood (310) has a raised pad at the bottom of its front side, and the anti-detachment plate (160) is located directly above the raised pad. The ventilation hood (310) has heat exchange windows on both sides and the back. The outer ends of both the side wing vibration pin (350) and the back vibration pin (360) extend into the heat exchange window.
3. The prefabricated high-voltage central control module for an energy storage power station according to claim 1, characterized in that, The side wing baffle (330) and the back baffle (340) are both provided with limit slots, and the bottom of the side wing baffle (330) and the back baffle (340) are both provided with evenly distributed pads. Two limiting posts (370) are installed on both the side wing baffle (330) and the rear baffle (340), and springs (380) are provided on the outside of the limiting posts (370).
4. The prefabricated high-voltage central control module for an energy storage power station according to claim 1, characterized in that, The prefabricated cabin mechanism (100) also includes a hydraulic component (120) disposed on the prefabricated cabin (110); The prefabricated compartment (110) has two side drain grooves (130) on both sides and a back drain groove (140) on the back. The inner wall of the prefabricated cabin (110) is fitted with two symmetrically distributed feet (150).
5. A prefabricated high-voltage central control module for an energy storage power station according to claim 1, characterized in that, The power-assisted stabilization mechanism (200) includes a lever arm (210) movably mounted on a foot pad (150), a base (250) movably mounted on the top end of the lever arm (210), and a suspension (260) provided at the other end of the base (250). The suspension (260) is mounted on the bottom of the hood (320); The lever arm (210) has a slot inside.
6. A prefabricated high-voltage central control module for an energy storage power station according to claim 5, characterized in that, A guide rod (220) is installed in the slot inside the lever arm (210), and an adapter (230) is movably installed on the outside of the guide rod (220); A tension spring (240) is connected to the adapter (230).
7. A prefabricated high-voltage central control module for an energy storage power station according to claim 5, characterized in that, The base (250) is composed of an I-shaped end and a slider, and the slider is adapted to pass through the slide rail inside the suspension (260); The top of the suspension (260) is provided with two symmetrically distributed supports at both ends.
8. A prefabricated high-voltage central control module for an energy storage power station according to claim 1, characterized in that, Both the side wing vibration pin (350) and the back vibration pin (360) are made of stainless steel, and the triangular end faces of the side wing vibration pin (350) and the back vibration pin (360) are adapted to penetrate into the heat exchange window inside the cover (320).