Modular energy storage super charging station

The modular energy storage super charging station addresses the challenges of size, mobility, and convenience by enabling easy assembly/disassembly and efficient heat management, improving usability and operational efficiency.

GB2702202APending Publication Date: 2026-06-03FLEX-GO ENERGY LTD

Patent Information

Authority / Receiving Office
GB · GB
Patent Type
Applications
Current Assignee / Owner
FLEX-GO ENERGY LTD
Filing Date
2024-10-30
Publication Date
2026-06-03

AI Technical Summary

Technical Problem

Existing energy storage super charging stations are difficult to meet long-term use needs, are large in volume, inconvenient to carry, and lack flexible mobility and use convenience, necessitating increased energy storage modules that exacerbate these issues.

Method used

A modular energy storage super charging station design featuring a base, energy storage modules, a top box, quick-release mechanisms, photovoltaic power generation components, ventilation and heat dissipation mechanisms, and cooling fans, allowing easy assembly and disassembly, adjustable energy supply, and efficient heat management.

Benefits of technology

Enables convenient carrying and use of individual modules, flexible energy storage capacity adjustment, and effective heat dissipation, enhancing the station's usability and operational efficiency.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 00000000_0000_ABST
    Figure 00000000_0000_ABST
Patent Text Reader

Abstract

A modular energy storage super charging station has a base 1, a plurality of energy storage modules 2, and a top box 3, whereby the storage modules are stacked between the base and the top box. Mounti
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD The present invention relates to the technical field of energy storage charging stations, in particular to a modular energy storage super charging station. BACKGROUND An energy storage super charging station is mainly composed of an energy storage charging and discharging module and a control system. The energy storage charging and discharging module realizes energy conversion between energy storage batteries, electric vehicle batteries and alternating current power grids or photovoltaic direct current microgrids, and the control system realizes online monitoring and management of batteries and control of energy storage charging and discharging modules. Currently, energy storage super charging stations are widely applied to outdoor activities, emergency rescue, remote off-grid areas and other occasions. However, in order to be convenient to cany and use, most energy storage super charging stations are usually small in volume, the energy storage super charging stations are small in volume, short in service life, difficult to meet the needs of long-tenn use. In order to meet high energy storage need, the need can only be achieved through increasing of energy storage modules inside the energy storage super charging stations, however, the stations are large in volume, and inconvenient to carry, and cannot meet the needs of flexible mobility, and are low in use convenience. Therefore, designing a modular energy storage super charging station to solve the aforementioned defects is particularly important. SUMMARY In view of the deficiencies of the prior art, the present invention designs a modular energy storage super charging station, which aims at solving the problem that energy storage super charging stations in the prior art are difficult to meet the needs of long-tenn use. In order to meet high energy storage need, the need can only be achieved through increasing of energy storage modules inside the energy storage super charging stations, however, the stations have the technical problems of large volume, inconvenience in carrying, inability to meet the needs of flexible mobility, and low use convenience. To achieve the aforementioned purpose, the present invention provides the following technical scheme: a modular energy storage super charging station comprises a base, a plurality of energy storage modules and a top box, wherein the plurality of energy storage modules are stacked between the base and the top box; mounting bottom plates are fixedly mounted at the bottoms of the plurality of energy storage modules and the top box; quick-release mechanisms are mounted among the base, the plurality of energy storage modules and the mounting bottom plates; a photovoltaic power generation component is fixedly mounted at the top of the top box; ventilation and heat dissipation mechanisms are mounted among the base, the plurality of energy storage modules, the top box and the mounting bottom plates; cooling fans are fixedly mounted at both the left and right ends of the top of the top box; the plurality of ventilation and heat dissipation mechanisms and the cooling fans together constitute a heat dissipation system of the energy storage super charging station. As a preferred solution of the present invention, supporting legs are fixedly connected to the four comers of the bottom of the base; a sun shield is fixedly mounted at the top of the top box; the plurality of top boxes are fixedly connected to the top of the top box through a plurality of supporting rods. As a preferred solution of the present invention, the quick-release mechanism comprises positioning columns fixedly connected to the four comers of the bottom of the mounting bottom plate; positioning holes are formed in the base in positions corresponding to the top of the energy storage module and the positioning columns; transmission rods are movably mounted at both the left and right ends of the tops of the base and the energy storage module; sliding rods are fixedly connected to the front ends of two transmission rods; a spring is fixedly connected with the part between two sliding rods; operating handles are fixedly connected to the opposite ends of the two sliding rods; connecting sleeves are fixedly connected to the rear ends of the two transmission rods; fixing plug posts are fixedly connected to the opposite sides of the two sliding rods and the two connecting sleeves; fixing holes matched with the fixing plug posts are formed inside the positioning columns. As a preferred solution of the present invention, the rear ends of the transmission rods are in sliding connection with to the base and the energy storage module through first sliding chutes; the operating handles are in sliding connection with the base and the energy storage module through second sliding chutes; a fixing sleeve is rotationally connected to the outer side of one operating handle. As a preferred solution of the present invention, the photovoltaic power generation component comprises a first motor fixedly mounted at the front end of the top of the top box; a transmission box is fixedly mounted at the rear end of the top of the top box; a first rotating shaft is rotationally connected with the interior of the transmission box; storage frames are fixedly connected with both the left and right ends of the first rotating shaft; a case is fixedly mounted at the bottom end of the back of each of the two storage frames; a second motor is fixedly mounted at the interior of each of the two cases; a second rotating shaft is fixedly connected to the driving end of each of the two second motors; a plurality of photovoltaic wing panels are fixedly mounted on the outer sides of the second rotating shafts and positioned inside the storage frames. As a preferred solution of the present invention, a transmission gear is fixedly connected to the outer side of the first rotating shaft and positioned inside the transmission box, and the driving end of the first motor is meshed with the transmission gear through a driving gear. As a preferred solution of the present invention, a limit plate is fixedly mounted at the top of the storage frame; rollers are rotationally connected with the top ends of the plurality of photovoltaic wing panels; the roller of one photovoltaic wing panel is positioned on the inner side of the limit plate; the outer side of the second rotating shaft is rotationally connected to the storage frame through a connecting seat: the plurality of photovoltaic wing panels are evenly spaced and distributed on the outer side of the second rotating shaft. As a preferred solution of the present invention, the ventilation and heat dissipation mechanism comprises baffles rotationally connected to the left and right ends of the interior of the mounting bottom plate; both the left and right ends of the two baffles are rotationally connected to the mounting bottom plate through connecting columns; torsion springs are sleeved to the outer sides of the two connecting columns; a connecting gear is fixedly connected to the position where one connecting column is connected with the baffles; racks are rotationally connected with both the left and right ends of the top of the base and the energy storage module; the plurality’ of racks are all meshed with the connecting gear; air inlets are fonned in both the left and right sides of the base; ventilation openings are formed in the interiors of the base and the energy storage module in positions corresponding to the baffles; dust screens are fixedly mounted inside the plurality of ventilation openings. As a preferred solution of the present invention, a jack is fonned in the bottom of the mounting bottom plate in a position corresponding to the rack, and the bottom end of the rack is rotationally connected to the base and the energy storage module through a limiting sleeve. As a preferred solution of the present invention, guide grooves are fonned inside the base and positioned at one opposite ends of the two air inlets; a dust collecting box is movably mounted inside the base and positioned between the two guide grooves; a drawing groove is fonned in the outer side of the dust collecting box. Compared to the prior art, the present invention has the following beneficial effects: 1. In the present invention, through the coordinated design of the base, energy storage modules, top box, mounting bottom plates and quick-release mechanisms, when the energy storage modules are mounted and used, the user only needs to pinch the two operating handles with one hand to drive the two sliding rods to move relative to each other, and at the same time drive the two transmission rods to move relative to each other, to ensure that the plurality of fixing plug posts make way for the insertion positions of the positioning columns, then insert the positioning columns at the bottom of the mounting bottom plate into the interior of the positioning holes, and then release the operating handles to fix the positioning columns, so that the energy storage modules can be easily disassembled and assembled. When the energy storage super charging station is used, a single energy storage module is convenient to carry’ and use, and stacking multiple energy storage modules can meet high energy storage need. Multiple stacked energy storage modules are also convenient to disassemble and carry-. Through the increasing or reducing of the number of energy storage modules, different usage requirements can be met, so that the use convenience of the energy storage super charging station is greatly improved. 2. In the present invention, through the coordinated design of photovoltaic poyver generation components, when the energy storage super charging station is in use, the plurality of photovoltaic wing panels are unfolded, and the unfolded area of the plurality of photovoltaic yving panels is controlled by controlling the rotation of the second rotating shaft to adjust the area receiving light, so that the energy supply efficiency of the energy storage super charging station is improved. Tire plurality of photovoltaic wing panels are used to supply energy to the energy storage module, and meanwhile the photovoltaic w ing panels are can be folded and stored when not in use to reduce the occupied volume, so that the station is convenient to carry’ and move. 3. In the present invention, through the coordinated design of the ventilation and heat dissipation mechanisms and the cooling fans, when an energy storage module is in use, the baffle is in a closed state under the action of the torsion spring to close the bottom of the mounting bottom plate, thereby preventing external impurities from entering the interior of the energy storage module and causing damage. The energy storage modules ventilate and dissipate heat by themselves through the ventilation opening, and the baffles can be automatically opened after the energy storage modules are stacked, so that the interiors of the plurality of energy storage modules can be connected with one another after the stacked installation, thereby avoiding heat accumulation and difficulty in dissipating after the stacked installation of the plurality of energy storage modules. When the energy storage super charging station is operated, the cooling fans are started to dissipate heat by exhausting air to the outside, and the outside air enters into the interior of the base through the air inlets under the action of the exhaust suction. After entering the base, the outside air passes through the interiors of the plurality of energy storage modules in turn and finally takes out heat, thereby ensuring the normal operation of the entire energy storage super charging station. BRIEF DESCRIPTION OF DRAWINGS Figure 1 is a schematic diagram of the overall structural of the present invention; Figure 2 is a schematic diagram of the top structure of the top box of the present invention; Figure 3 is a schematic diagram of the internal structure of the transmission box of the present invention; Figure 4 is a schematic diagram of the partial structure of the photovoltaic power generation component of the present invention; Figure 5 is a schematic diagram of the front unfolded structure of the photovoltaic wing panel of the present invention; Figure 6 is a schematic diagram of the back unfolded structure of the wing panel of the present invention; Figure 7 is a schematic diagram of the structure of the quick-release mechanism of the present invention; Figure 8 is an enlarged schematic diagram of the point A in Figure 7; Figure 9 is an enlarged schematic diagram of the point B in Figure 7; Figure 10 is a schematic diagram of the structure of the ventilation and heat dissipation mechanism of the present invention; Figure 11 is a schematic diagram of the internal structure of the mounting bottom plate of the present invention; Figure 12 is an enlarged schematic diagram of the point C in Figure 11; Figure 13 is a schematic diagram of the internal structure of the base of the present invention; Figure 14 is an enlarged schematic diagram of the point D in Figure 13. In the figures: 1, base; 101. supporting leg; 2, energy storage module; 3, top box; 301, sun shield; 302, supporting rod; 4, mounting bottom plate; 5, quick-release mechanism; 501, positioning column; 502, positioning hole; 503, transmission rod; 504, sliding rod; 505, spring; 506, operating handle; 507, connecting sleeve; 508, fixing plug post; 509, fixing hole; 510, first sliding chute; 511. second sliding chute; 512, fixing sleeve; 6, photovoltaic power generation component; 601, first motor; 602. transmission box; 603, first rotating shaft; 604. storage frame; 605, case; 606, second motor; 607, second rotating shaft; 608, photovoltaic wing panel; 609, transmission gear; 610, driving gear; 611. limit plate; 612, roller; 613, connecting seat; 7, ventilation and heat dissipation mechanism; 701, baffle; 702, connecting column; 703, torsion spring; 704. connecting gear; 705, rack; 706, air inlet; 707, ventilation opening; 708, dust screen; 709, jack; 710, limiting sleeve; 711, guide groove; 712, dust collecting box; 8, cooling fan. DETAILED DESCRIPTION OF EMBODIMENTS The technical scheme in the embodiments of the present invention will be clearly and completely described below with reference to the embodiments of the present invention. Obviously, the described embodiments are only some of the embodiments of the present invention, not all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts, fall within the scope of protection of the present invention. Embodiment: Please refer to Figures 1 to 14. tire present invention provides a technical scheme: a modular energy storage super charging station comprises a base 1, a plurality of energy storage modules 2 and a top box 3, wherein the plurality of energy storage modules 2 are stacked between the base 1 and the top box 3; mounting bottom plates 4 are fixedly mounted at tire bottoms of the plurality of energy storage modules 2 and the top box 3; quick-release mechanisms 5 are mounted among the base 1, the plurality of energy storage modules 2 and the mounting bottom plates 4; a photovoltaic power generation component 6 is fixedly mounted at the top of the top box 3. Ventilation and heat dissipation mechanisms 7 are mounted among the base 1, the plurality of energy storage modules 2, the top box 3 and the mounting bottom plates 4: cooling fans 8 are fixedly mounted at both the left and right ends of the top of the top box 3; the plurality of ventilation and heat dissipation mechanisms 7 and the cooling fans 8 together constitute a heat dissipation system of the energy storage super charging station; after the base 1 and the top box 3 are connected with the energy storage modules 2, and after the plurality of energy storage modules 2 are connected with one another, the base 1, the top box 3 and the energy storage modules 2 are all connected with one another through the ventilation and heat dissipation mechanisms 7. When the cooling fans 8 are operated, heat inside the entire energy storage super charging station can be taken away, so that the normal operation of the station is guaranteed. First, supporting legs 101 are fixedly connected to the four comers of the bottom of the base 1; a sun shield 301 is fixedly mounted at the top of the top box 3; the plurality of top boxes 3 are fixedly connected to the top of the top box 3 through a plurality of supporting rods 302; the base 1 is supported through a plurality of supporting legs 101, heat accumulation at the bottom of the base 1 is avoided, and meanwhile the bottom of the base 1 from being affected with damp. When the top box 3 is in use, the sun shield 301 is used for providing sunshading and shelter from rain, and protecting the top. Further, the quick-release mechanism 5 comprises positioning columns 501 fixedly connected to the four corners of the bottom of the mounting bottom plate 4; positioning holes 502 are fonned in the base 1 in positions corresponding to the top of the energy storage module 2 and the positioning columns 501; transmission rods 503 are movably mounted at both the left and right ends of the tops of the base 1 and the energy storage module 2; sliding rods 504 are fixedly connected to the front ends of two transmission rods 503; a spring 505 is fixedly connected with the part between two sliding rods 504; operating handles 506 are fixedly connected to the opposite ends of the two sliding rods 504; connecting sleeves 507 are fixedly connected to the rear ends of the two transmission rods 503; fixing plug posts 508 are fixedly connected to the opposite sides of the two sliding rods 504 and the two connecting sleeves 507; fixing holes 509 matched with the fixing plug posts 508 are formed inside the positioning columns 501. When the energy storage modules 2 are mounted and used, the user only needs to pinch the two operating handles 506 with one hand to drive the two sliding rods 504 to move relative to each other, and at the same time drive the two transmission rods 503 to move relative to each other, to ensure that the plurality of fixing plug posts 508 make way for the insertion positions of the positioning columns 501, then insert the positioning columns 501 at the bottom of the mounting bottom plate 4 into the interior of the positioning holes 502, and then release the operating handles 506 to fix the positioning columns 501, so that the energy storage modules 2 can be easily disassembled and assembled. When the energy storage super charging station is used, a single energy storage module 2 is convenient to cany- and use, and stacking multiple energy storage modules 2 can meet high energy storage need. Multiple stacked energy storage modules 2 are also convenient to disassemble and carry. Through the increasing or reducing of the number of energy storage modules 2, different usage requirements can be met, so that the use convenience of the energy storage super charging station is greatly improved. Then, the rear ends of the transmission rods 503 are in sliding connection with to the base 1 and the energy storage module 2 through first sliding chutes 510; the operating handles 506 are in sliding connection with the base 1 and the energy storage module 2 through second sliding chutes 511; a fixing sleeve 512 is rotationally connected to the outer side of one operating handle 506. When the operating handle 506 is used, the rear end of the transmission rods 503 slide in the first sliding chutes 510, so that the transmission rods can move stably, and the operating handles 506 slide inside the second sliding chutes 511 to limit the moving distance of the operating handles. At the same time, after the two operating handles 506 are pinched, in order to avoid rebound when the energy storage modules 2 are mounted, the fixing sleeve 512 is sleeved to the outer side of the other operating handle 506, so that the two operating handles 506 are fixed to facilitate the mounting operation of the energy storage modules 2. The photovoltaic power generation component 6 comprises a first motor 601 fixedly mounted at the front end of the top of the top box 3; a transmission box 602 is fixedly mounted at the rear end of the top of the top box 3; a first rotating shaft 603 is rotationally connected with the interior of the transmission box 602; storage frames 604 are fixedly connected with both the left and right ends of the first rotating shaft 603; a case 605 is fixedly mounted at the bottom end of the back of each of the two storage frames 604; a second motor 606 is fixedly mounted at the interior of each of the two cases 605; a second rotating shaft 607 is fixedly connected to the driving end of each of the two second motors 606; a transmission gear 609 is fixedly connected to the outer side of the first rotating shaft 603 and positioned inside the transmission box 602; the driving end of the first motor 601 is meshed with the transmission gear 609 through a driving gear 610. When the energy storage super charging station is in use, the first motor 601 is started to drive the first rotating shaft 603 to rotate under the transmission of the driving gear 610 and the transmission gear 609, thereby driving the storage frame 604 to rotate to be adjusted to a horizontal state, and then the second motor 606 is started to drive the second rotating shaft 607 to rotate, so that the plurality of photovoltaic wing panels 608 are unfolded from the inner side of the storage frame 604. The unfolded area of the plurality of photovoltaic wing panels 608 is controlled by controlling the rotation of the second rotating shaft 607 to adjust the area receiving light, so that the energy supply efficiency of the energy storage super charging station is improved. The plurality of photovoltaic wing panels 608 are used to supply energy to the energy storage module 2, and meanwhile the photovoltaic wing panels are can be folded and stored when not in use to reduce the occupied volume, so that the station is convenient to earn and move. Furthermore, a limit plate 611 is fixedly mounted at the top of the storage frame 604; rollers 612 are rotationally connected with the top ends of the plurality of photovoltaic wing panels 608; the roller 612 of one photovoltaic wing panel 608 is positioned on the inner side of the limit plate 611: the outer side of the second rotating shaft 607 is rotationally connected to the storage frame 604 through a connecting seat 613; the plurality of photovoltaic wing panels 608 are evenly spaced and distributed on the outer side of the second rotating shaft 607. When the plurality’ of photovoltaic wing panels 608 are unfolded, the maximum unfolding degree is limited by the plurality’ of rollers 612 and the limit plate 611. Further, the ventilation and heat dissipation mechanism 7 comprises baffles 701 rotationally connected to the left and right ends of the interior of the mounting bottom plate 4; both the left and right ends of the two baffles 701 are rotationally connected to the mounting bottom plate 4 through connecting columns 702: torsion springs 703 are sleeved to the outer sides of the two connecting columns 702; a connecting gear 704 is fixedly connected to the position where one connecting column 702 is connected with the baffles 701; racks 705 are rotationally connected with both the left and right ends of the top of the base 1 and the energy storage module 2; the plurality of racks 705 are all meshed with the connecting gear 704; air inlets 706 are formed in both the left and right sides of the base 1; ventilation openings 707 are formed in the interiors of the base 1 and the energy storage module 2 in positions corresponding to the baffles 701; dust screens 708 are fixedly mounted inside the plurality of ventilation openings 707; a jack 709 is fonned in the bottom of the mounting bottom plate 4 in a position corresponding to the rack 705. and the bottom end of the rack 705 is rotationally connected to the base 1 and the energy storage module 2 through a limiting sleeve 710. When an energy storage module 2 is in use, the baffle 701 is in a closed state under the action of the torsion spring 703 to close the bottom of the mounting bottom plate 4, thereby preventing external impurities from entering the interior of the energy storage module 2 and causing damage. The energy storage modules 2 ventilate and dissipate heat by themselves through the ventilation opening 707. When the energy storage modules 2 are stacked, the rack 705 is first rotated to stand under the limiting of the limiting sleeve 710. and then the rack 705 is inserted through the jack 709 when the mounting bottom plate 4 is installed. When the rack 705 is inserted, the rack is meshed with the connecting gear 704. thereby driving the connecting column 702 to rotate to open the baffle 701, so that the interiors of the plurality of energy storage modules 2 can be connected with one another after being stacked. Finally, guide grooves 711 are fonned inside the base 1 and positioned at one opposite ends of the two air inlets 706; a dust collecting box 712 is movably mounted inside the base 1 and positioned between the two guide grooves 711; a drawing groove is formed in the outer side of the dust collecting box 712. The interiors of the plurality of energy storage modules 2 can be connected with one another after the stacked installation of the plurality of energy storage modules 2 are stacked, thereby avoiding heat accumulation and difficulty in dissipating after the stacked installation of the plurality of energy storage modules 2. When the energy storage super charging station is operated, the cooling fans 8 are started to dissipate heat by exhausting air to the outside, and the outside air enters into the interior of the base 1 through the air inlets 706 under the action of the exhaust suction. The obliquely downward air inlets 706 can prevent external impurities and rainwater from directly entering the interior of the base 1. After entering the base, the outside air passes through the interiors of the plurality of energy storage modules 2 in turn and finally takes out heat, thereby ensuring the normal operation of the entire energy storage super charging station. At the same time, when the external air enters the interior of the base 1, impurities in the air is blocked through the dust screen 708 inside the base 1. Falling dust and impurities can be guided through the guide groove 711 and finally collected and stored through the dust collecting box 712. Hie dust collecting box 712 can be cleaned finally, so that the energy storage super charging station is convenient to maintain. In this embodiment, the implementation scenario is specifically as follows: When the energy storage modules 2 are mounted and used, the user only needs to pinch the two operating handles 506 with one hand to drive the two sliding rods 504 to move relative to each other, and at the same time drive the two transmission rods 503 to move relative to each other, to ensure that the plurality of fixing plug posts 508 make way for the insertion positions of the positioning columns 501, then insert the positioning columns 501 at the bottom of the mounting bottom plate 4 into the interior of the positioning holes 502, and then release the operating handles 506 to fix the positioning columns 501, so that the energy storage modules 2 can be easily disassembled and assembled. When the energy storage super charging station is used, a single energy storage module 2 is convenient to carry and use, and stacking multiple energy storage modules 2 can meet high energy storage need. Multiple stacked energy storage modules 2 are also convenient to disassemble and carry When the energy storage super charging station is in use, the plurality of photovoltaic wing panels 608 are unfolded, and the unfolded area of the plurality’ of photovoltaic wing panels 608 is controlled by controlling the rotation of the second rotating shaft 607 to adjust the area receiving light, so that the energy supply efficiency of the energy storage super charging station is improved. The plurality of photovoltaic wing panels 608 are used to supply energy to the energy storage module 2, and meanwhile the photovoltaic wing panels are can be folded and stored when not in use to reduce the occupied volume, so that the station is convenient to carry and move. When an energy storage module 2 is in use. the baffle 701 is in a closed state under the action of the torsion spring 703 to close the bottom of the mounting bottom plate 4, thereby preventing external impurities from entering the interior of the energy storage module 2 and causing damage. The energy storage modules 2 ventilate and dissipate heat by themselves through the ventilation opening 707, and the baffles 701 can be automatically opened after the energy storage modules 2 are stacked, so that the interiors of the plurality of energy storage modules 2 can be connected with one another after the stacked installation, thereby avoiding heat accumulation and difficulty in dissipating after the stacked installation of the plurality of energy storage modules 2. When the energy storage super charging station is operated, the cooling fans 8 are started to dissipate heat by exhausting air to the outside, and the outside air enters into the interior of the base 1 through the air inlets 706 under the action of the exhaust suction. The obliquely downward air inlets 706 can prevent external impurities and rainwater from directly entering the interior of the base 1. After entering the base, the outside air passes through the interiors of the plurality of energy storage modules 2 in turn and finally takes out heat, thereby ensuring the normal operation of the entire energy storage super charging station. At the same time, when the external air enters the interior of the base 1. impurities in the air is blocked through the dust screen 708 inside the base 1. Falling dust and impurities can be guided through the guide groove 711 and finally collected and stored through the dust collecting box 712. The dust collecting box 712 can be cleaned finally, so that the energy storage super charging station is convenient to maintain. The whole operation process is simple and convenient. Compared with the existing energy storage super charging stations, the present invention can meet different usage requirements through modular design and by increasing or decreasing the number of energy storage modules 2, thereby greatly improving the use convenience of the energy storage super charging station, and meanwhile improving the energy supply efficiency of the energy storage super charging station, and can dissipate heat after the plurality of energy storage modules 2 are stacked, thereby ensuring the normal operation of the entire energy storage super charging station. Although the examples of the present invention have been shown and described, the person skilled in the art can understand that various changes, modifications, substitutions and variations can be made to these examples without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A modular energy storage super charging station, comprising a base (1), a plurality of energy storage modules (2) and a top box (3), characterized in that the plurality of energy storage modules (2) are stacked between the base (1) and the top box (3); mounting bottom plates (4) are fixedly mounted at the bottoms of the plurality of energy storage modules (2) and the top box (3); quick-release mechanisms (5) are mounted among the base (1). the plurality of energy storage modules (2) and the mounting bottom plates (4); a photovoltaic power generation component (6) is fixedly mounted at the top of the top box (3);ventilation and heat dissipation mechanisms (7) are mounted among the base (1), the plurality of energy storage modules (2), the top box (3) and the mounting bottom plates (4); cooling fans (8) are fixedly mounted at both the left and right ends of the top of the top box (3); the plurality of ventilation and heat dissipation mechanisms (7) and the cooling fans (8) together constitute a heat dissipation system of the energy storage super charging station.

2. A modular energy storage super charging station according to claim 1, characterized in that supporting legs (101) are fixedly connected to the four comers of the bottom of the base (1); a sun shield (301) is fixedly mounted at the top of the top box (3); the plurality of top boxes (3) are fixedly connected to the top of the top box (3) through a plurality of supporting rods (302).

3. A modular energy storage super charging station according to claim 1, characterized in that the quick-release mechanism (5) comprises positioning columns (501) fixedly connected to the four comers of the bottom of the mounting bottom plate (4): positioning holes (502) are formed in the base (1) in positions corresponding to the top of the energy storage module (2) and the positioning columns (501); transmission rods (503) are movably mounted at both the(504) are fixedly connected to the front ends of two transmission rods (503); a spring (505) is fixedly connected with the part between two sliding rods (504); operating handles (506) are fixedly connected to the opposite ends of the two sliding rods (504); connecting sleeves (507) are fixedly connected to the rear ends of the two transmission rods (503); fixing plug posts (508) are fixedly connected to the opposite sides of the two sliding rods (504) and the two connecting sleeves (507); fixing holes (509) matched with the fixing plug posts (508) are formed inside the positioning columns (501).

4. A modular energy storage super charging station according to claim 3, characterized in that the rear ends of the transmission rods (503) are in sliding connection with to the base (1) and the energy storage module (2) through first sliding chutes (510); the operating handles (506) are in sliding connection with the base (1) and the energy storage module (2) through second sliding chutes (511); a fixing sleeve (512) is rotationally connected to the outer side of one operating handle (506).

5. A modular energy storage super charging station according to claim 1, characterized in that the photovoltaic power generation component (6) comprises a first motor (601) fixedly mounted at the front end of the top of the top box (3); a transmission box (602) is fixedly mounted at the rear end of the top of the top box (3); a first rotating shaft (603) is rotationally connected with the interior of the transmission box (602); storage frames (604) are fixedly connected with both the left and right ends of the first rotating shaft (603); a case (605) is fixedly mounted at the bottom end of the back of each of the two storage frames (604); a second motor (606) is fixedly mounted at the interior of each of the two cases (605); a second rotating shaft (607) is fixedly connected to the driving end of each of the two second motors (606); a plurality of photovoltaic wing panels (608) are fixedly mounted on the outer sides ofthe second rotating shafts (607) and positioned inside the storage frames (604).

6. A modular energy storage super charging station according to claim 5, characterized in that a transmission gear (609) is fixedly connected to the outer side of the first rotating shaft (603) and positioned inside the transmission box (602), and the driving end of the first motor (601) is meshed with the transmission gear (609) through a driving gear (610).

7. A modular energy storage super charging station according to claim 5, characterized in that a limit plate (611) is fixedly mounted at the top of the storage frame (604); rollers (612) are rotationally connected with the top ends of the plurality of photovoltaic wing panels (608); the roller (612) of one photovoltaic wing panel (608) is positioned on the inner side of the limit plate (611); the outer side of the second rotating shaft (607) is rotationally connected to the storage frame (604) through a connecting seat (613); the plurality of photovoltaic wing panels (608) are evenly spaced and distributed on the outer side of the second rotating shaft (607).

8. A modular energy storage super charging station according to claim 1, characterized in that the ventilation and heat dissipation mechanism (7) comprises baffles (701) rotationally connected to the left and right ends of the interior of the mounting bottom plate (4); both the left and right ends of the two baffles (701) are rotationally connected to the mounting bottom plate (4) through connecting columns (702); torsion springs (703) are sleeved to the outer sides of the two connecting columns (702); a connecting gear (704) is fixedly connected to the position where one connecting column (702) is connected with the baffles (701); racks (705) are rotationally connected with both the left and right ends of the top of the base (1) and the energy storage module (2); the plurality of racks (705) are all meshed with the connecting gear (704); air inlets (706) are formed in both the left and right sides of the base (1); ventilation openings (707) are formed in the interiors of the base (1) and the energy storage module (2) inpositions corresponding to the baffles (701); dust screens (708) are fixedly mounted inside theplurality of ventilation openings (707).

9. A modular energy storage super charging station according to claim 8, characterized in that a jack (709) is fonned in the bottom of the mounting bottom plate (4) in a position corresponding to the rack (705). and the bottom end of the rack (705) is rotationally connected to the base (1) and the energy storage module (2) through a limiting sleeve (710).

10. A modular energy storage super charging station according to claim 8. characterized in that guide grooves (711) are fonned inside the base (1) and positioned at one opposite ends of the two air inlets (706); a dust collecting box (712) is movably mounted inside the base (1) and positioned between the two guide grooves (711); a drawing groove is formed in the outer side of the dust collecting box (712).