Energy storage container

By installing corrugated plates and explosion-proof valve assemblies on the top wall of the energy storage container, the problem of the energy storage container being unable to quickly reduce gas pressure during a fire is solved, achieving the safety effect of quickly discharging high-temperature gas and preventing explosion.

CN224123474UActive Publication Date: 2026-04-14DONGGUAN SOUTHERN CIMC LOGISTIC EQUIP MFG CO +2
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-03
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

Existing energy storage containers cannot quickly reduce the air pressure inside the container in the event of a fire, resulting in the accumulation of high-temperature gas at the top, which poses an explosion risk.

Method used

An energy storage container was designed with a top wall composed of corrugated plates and flat plates. An explosion-proof valve assembly was installed, which is connected to the flat plate. The explosion-proof valve can quickly discharge gas when the air pressure rises, thereby reducing the air pressure inside the container.

Benefits of technology

By quickly expelling high-temperature gas, it effectively prevents the accumulation of high-temperature gas at the top of the enclosure, reduces the gas pressure inside the enclosure, prevents explosions, and improves safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an energy storage container. The energy storage container comprises a container body and an anti-explosion valve assembly. The box body comprises a top wall, the top wall comprises a corrugated plate and a flat plate, the corrugated plate and the flat plate are sequentially arranged and connected in the length direction of the box body, and the flat plate is provided with an anti-explosion opening; the explosion-proof valve assembly comprises an explosion-proof valve, and the explosion-proof valve is connected to the flat plate and covers the explosion-proof opening. According to the energy storage container, the top wall comprises the corrugated plates and the flat plates, and the corrugated plates can improve the strength of the top plate; in addition, the flat plate is provided with the anti-explosion valve, gas in the box body can be exhausted more quickly, high-temperature gas is prevented from being accumulated at the top end of the box body, and therefore the gas pressure in the box body is reduced more effectively.
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Description

Technical Field

[0001] This utility model relates to the field of containers, and more specifically to energy storage containers. Background Technology

[0002] As a common international transportation and logistics tool for multimodal transport, energy storage containers are being used in an increasingly wide range of fields.

[0003] Existing energy storage containers are equipped with explosion-proof valves on their side or end walls. As a result, in the event of a fire, high-temperature gas accumulates at the top of the container, making it impossible to quickly reduce the gas pressure inside the container.

[0004] Therefore, this utility model provides an energy storage container to at least partially solve the above-mentioned problems. Utility Model Content

[0005] The utility model description section introduces a series of simplified concepts, which will be further described in detail in the detailed embodiments section. This utility model description section is not intended to limit the key features and essential technical features of the claimed technical solution, nor is it intended to determine the scope of protection of the claimed technical solution.

[0006] To at least partially solve the above-mentioned technical problems, this utility model provides an energy storage container, which includes:

[0007] The enclosure includes a top wall, which includes a corrugated plate and a flat plate. The corrugated plate and the flat plate are arranged and connected sequentially along the length of the enclosure, and the flat plate has an explosion-proof vent.

[0008] An explosion-proof valve assembly includes an explosion-proof valve connected to a flat plate and covering an explosion-proof port.

[0009] According to the present invention, the energy storage container has a top wall comprising a corrugated plate and a flat plate. The corrugated plate increases the strength of the top plate. In addition, the flat plate is equipped with an explosion-proof valve, which can more quickly discharge the gas inside the container and prevent the accumulation of high-temperature gas at the top of the container, thereby more effectively reducing the gas pressure inside the container.

[0010] Optionally, the energy storage container also includes:

[0011] An explosion-proof mounting component is provided, which is connected to a flat plate. The component includes a connecting portion that extends below the flat plate and has a blind mounting hole with its axial direction parallel to the height direction of the housing and an opening at its top.

[0012] The explosion-proof valve assembly also includes explosion-proof fasteners, which pass through the explosion-proof valve and are threaded to the mounting blind hole.

[0013] Optionally, the explosion-proof mounting component also includes a connecting plate portion, the top of which is connected to the connecting plate portion and extends to the underside of the connecting plate portion.

[0014] The connecting plate is located above the flat plate and adheres to the top surface of the flat plate; the connecting part passes through the flat plate, or...

[0015] The connecting plate is located below the flat plate and is attached to the bottom surface of the flat plate.

[0016] Optionally, the explosion-proof mounting component also includes a reinforcing part, the top of which is connected to the connecting plate part, and the bottom of which is located below the plate.

[0017] Optionally, the connecting part is located below the flat plate and is connected to the flat plate.

[0018] Optionally, the top wall also includes a corner piece, wherein the top surface of the explosion-proof valve assembly is not higher than the top surface of the corner piece.

[0019] Optionally, the energy storage container includes doors and seals, and the container body also has vertical walls with door frames surrounding the opening. The doors are pivotally connected to the door frames to open or close the opening.

[0020] When the container door is closed, the seal is located between the container body and the door frame to seal the gap between the door frame and the door.

[0021] The bottom of the door frame has a bottom beam, and the box also includes a water-retaining bar located above the bottom beam and connected to the top surface of the bottom beam. The length direction of the water-retaining bar is parallel to the length direction of the bottom beam.

[0022] Optionally, when the tank door is closed, the water-blocking rod abuts against the seal.

[0023] Optionally, one of the outer and inner sides of the door is a flat surface.

[0024] Optionally, the door includes an outer skin and an inner skin with a gap between them, and the door also includes a door insulation layer located within the gap between the outer skin and the inner skin.

[0025] Optionally, the container also includes a maintenance access port, and the energy storage container also includes a maintenance door, which is pivotally connected to the container to open or close the maintenance access port.

[0026] The energy storage container also includes an air conditioning unit, which is located at the maintenance door.

[0027] Optionally, the top wall includes a top plate, a top frame, a partition, and a top insulation layer. The top plate includes a corrugated plate and a flat plate. Both the partition and the top plate are connected to the top frame. The partition is located below the top plate and there is a top gap between the partition and the top plate. The top insulation layer is located within the top gap, and the explosion-proof valve assembly passes through the partition.

[0028] Optionally, the energy storage container also includes an aerosol fire suppression system located below and connected to the partition.

[0029] Optionally, the energy storage container also includes fire-fighting fasteners, with fire-fighting nuts provided on the partitions, and the aerosol extinguishing device is threadedly connected to the fire-fighting nuts via the fire-fighting fasteners.

[0030] Optionally, the top frame includes top side beams and top crossbeams, with diaphragms connected to the top crossbeams and top side beams.

[0031] Optionally, the enclosure has vertical walls, which have an opening and a maintenance access panel.

[0032] The enclosure also includes a rain guide, which is located directly above the enclosure opening and / or the maintenance port. The rain guide is connected to the enclosure and extends to the outside of the vertical wall.

[0033] Optionally, the rain guide includes:

[0034] The connecting wall is fitted to and connected to the cabinet body;

[0035] The rain guide wall has one end connected to the top of the connecting wall and extends to the outside of the connecting wall.

[0036] Optionally, the rain guide also includes a rain shield wall, with the rain shield wall and the connecting wall spaced apart, and the top of the rain shield wall connected to the end of the rain guide wall away from the connecting wall.

[0037] Optionally, the plane containing the rain guide wall is parallel to the horizontal direction, or

[0038] The plane containing the rain guide wall is inclined to the height direction of the box, and the top of the rain guide wall is connected to the top of the connecting wall.

[0039] Optionally, a rain deflector is provided above the container opening. The energy storage container includes a door and locking bar assembly, and the container body has corner brackets. The door is pivotally connected to the container body to open or close the opening.

[0040] When the door is closed, the locking lever assembly is used to lock the door to the box body. The end of the rain guide away from the box body is located on the outside of the locking lever assembly and does not protrude to the outside of the top corner piece. Attached Figure Description

[0041] To make the advantages of this invention more readily apparent, the invention briefly described above will be described in more detail with reference to the specific embodiments shown in the accompanying drawings. It should be understood that these drawings depict only typical embodiments of the invention and should not be construed as limiting its scope of protection. The invention is described and explained with additional features and details through the drawings.

[0042] Figure 1 This is a perspective view of an energy storage container according to a first preferred embodiment of the present invention, wherein portions of the top wall and side walls are cut open;

[0043] Figure 2 for Figure 1 Another 3D diagram of the energy storage container, showing the maintenance door opening to the maintenance port;

[0044] Figure 3 for Figure 1 A top-down view of the energy storage container, showing the maintenance door closed to allow for maintenance access;

[0045] Figure 4 for Figure 1 A front view diagram of an energy storage container, showing the maintenance door closed to allow for maintenance access;

[0046] Figure 5 for Figure 1 A side view of an energy storage container;

[0047] Figure 6 for Figure 4 A cross-sectional view of the FF section of the energy storage container;

[0048] Figure 7 for Figure 3 A cross-sectional view of the EE section of an energy storage container, showing only the top wall;

[0049] Figure 8 for Figure 5 A cross-sectional view of the GG section of the energy storage container, showing only the end wall with the maintenance door;

[0050] Figure 9 for Figure 5 A cross-sectional view of the energy storage container at point HH;

[0051] Figure 10 for Figure 3 A cross-sectional view of the energy storage container at the DD section;

[0052] Figure 11 for Figure 1 A cross-sectional view of the door of an energy storage container;

[0053] Figure 12 for Figure 1 A three-dimensional schematic diagram of the end wall of an energy storage container equipped with a maintenance door;

[0054] Figure 13 for Figure 1 A partial schematic diagram of the top wall of an energy storage container;

[0055] Figure 14 for Figure 1 A three-dimensional diagram showing the inner skin and gantry of an energy storage container connected together;

[0056] Figure 15 for Figure 1 A partial schematic diagram of a 3D view of an energy storage container;

[0057] Figure 16 for Figure 1 A partially enlarged schematic diagram of point A on the energy storage container;

[0058] Figure 17 for Figure 2 A partially enlarged schematic diagram of point B on the energy storage container;

[0059] Figure 18 for Figure 2 A partially enlarged schematic diagram of point C of the energy storage container;

[0060] Figure 19 for Figure 6 A partially enlarged schematic diagram of point I of the energy storage container;

[0061] Figure 20 for Figure 6 A partially enlarged schematic diagram of point J on the energy storage container;

[0062] Figure 21 for Figure 7 A magnified view of part K on the top wall of the energy storage container;

[0063] Figure 22 for Figure 8 A partially enlarged schematic diagram of point L on the end wall of the energy storage container;

[0064] Figure 23 for Figure 10 A partially enlarged schematic diagram of point M of the energy storage container;

[0065] Figure 24 for Figure 13 A magnified view of part N on the top wall of the energy storage container;

[0066] Figure 25 for Figure 15 A magnified view of part O on the top wall of the energy storage container;

[0067] Figure 26 for Figure 15 A magnified view of part P on the top wall of the energy storage container;

[0068] Figure 27 for Figure 15 A magnified view of part Q on the top wall of the energy storage container;

[0069] Figure 28This is a schematic diagram of the rain guide of an energy storage container according to a second preferred embodiment of the present invention.

[0070] Figure 29 for Figure 28 A schematic diagram of the explosion-proof mounting components and flat plate connection of an energy storage container;

[0071] Figure 30 for Figure 28 A schematic diagram of the cross-section of the corner column of an energy storage container;

[0072] Figure 31 This is a schematic diagram of the explosion-proof mounting component and the flat plate connection of an energy storage container according to a third preferred embodiment of the present invention; and

[0073] Figure 32 for Figure 31 A schematic diagram of the reinforcing plate of an energy storage container.

[0074] Explanation of reference numerals in the attached figures

[0075] 100: Box body; 101: Top corner piece

[0076] 102: Vertical wall; 103: Side wall

[0077] 104: End wall 105: Box mouth

[0078] 106: Door frame; 107: Bottom side beam

[0079] 108: Water barrier; 109: Maintenance port;

[0080] 110: Top wall; 111: Top frame

[0081] 112: Top side beam; 113: Top cross beam

[0082] 114: Top beam; 115: Top slab

[0083] 116: Corrugated sheet 117: Flat sheet

[0084] 118: Partition plate 119: Explosion-proof vent

[0085] 120: Explosion-proof mounting component; 121: Connecting part

[0086] 122: Installation blind hole 123: Connecting plate

[0087] 124: Reinforcement section; 130: Explosion-proof valve assembly

[0088] 131: Explosion-proof valve; 132: Explosion-proof fastener

[0089] 140: Box door; 141: Outer skin

[0090] 142: Inner skin 143: Outer surface

[0091] 144: Inner side surface; 145: Door insulation layer

[0092] 146: Sealing element; 147: Maintenance door

[0093] 148: Air conditioning component; 150: Locking bar component

[0094] 151: Compression locking assembly; 160: Corner post

[0095] 161: Corner Post Assembly 162: Exterior Corner Post

[0096] 163: First outer corner wall 164: Second outer corner wall

[0097] 165: Third outer corner wall 166: Fourth outer corner wall

[0098] 167: Fifth exterior corner wall 170: Interior corner column

[0099] 171: First inner corner wall 172: Second inner corner wall

[0100] 173: Reinforcing plate 174: Reinforcing body

[0101] 175: Protrusion 176: Edge corresponding to the longer side

[0102] 177: Edge corresponding to the short side; 180: Top spacing.

[0103] 181: Aerosol fire extinguishing device; 182: Fire-fighting fasteners

[0104] 183: Fire extinguishing nut; 190: Rain guide.

[0105] 191: Connecting wall; 192: Rain guide wall

[0106] 193: Rain barrier 194: First rain guide

[0107] 195: Second rain guide; 217: Flat plate.

[0108] 221: Connecting part; 271: First inner corner wall

[0109] 272: Second interior corner wall; 278: Transition interior corner wall

[0110] 292: Rain guide wall; 317: Flat plate.

[0111] 321: Connecting part; 323: Connecting plate part

[0112] 324: Reinforcing part; 325: Side sleeve

[0113] 326: Base plate; 374: Reinforced body

[0114] 400: First bend 401: Second bend

[0115] 402: Gantry Detailed Implementation

[0116] In the following description, numerous specific details are set forth in order to provide a more thorough understanding of the present invention. However, it will be apparent to those skilled in the art that embodiments of the present invention may be practiced without one or more of these details. In other instances, certain technical features well-known in the art have not been described in order to avoid confusion with embodiments of the present invention.

[0117] The preferred embodiments of this utility model will now be described with reference to the accompanying drawings. It should be noted that the terms "upper," "lower," and similar expressions used herein are for illustrative purposes only and are not intended to be limiting.

[0118] In this document, ordinal numbers such as “first” and “second” used in this invention are merely identifiers and do not include any other meaning, such as a specific order.

[0119] To fully understand the embodiments of this utility model, a detailed structure will be presented in the following description. Obviously, the implementation of the embodiments of this utility model is not limited to the specific details familiar to those skilled in the art. Preferred embodiments of this utility model are described in detail below; however, in addition to these detailed descriptions, this utility model may also include other embodiments.

[0120] First Implementation Method

[0121] This embodiment provides a container. The container can be an energy storage container. The interior of the container body 100 is equipped with batteries to provide electrical energy. The top wall 110 of the container body 100 is provided with an explosion-proof valve 131 extending into the interior space of the container body 100 to prevent the container body 100 from exploding.

[0122] Please refer to Figures 1 to 27 The energy storage container includes a container body 100. The container body 100 includes a base frame, vertical walls 102, and a top wall 110. The vertical walls 102 include side walls 103 and end walls 104. The base frame, side walls 103, end walls 104, and top wall 110 form a generally rectangular parallelepiped structure.

[0123] like Figures 1 to 10As shown, the top wall 110 includes a top frame 111 and a top plate 115. The top frame 111 includes a top beam 114, top side beams 112, and a top crossbeam 113. The top beams 114 and top side beams 112 are connected to form a generally rectangular frame. Along the length of the box body 100 (i.e., along the length of the top side beams 112), the top crossbeam 113 is located between the two top beams 114. Along the width of the box body 100 (i.e., along the length of the top beams 114), the top crossbeam 113 is located between the two top side beams 112. One end of the top crossbeam 113 is connected to one top side beam 112. The other end of the top crossbeam 113 is connected to the other top side beam 112. Thus, the top crossbeam 113 can increase the strength of the top wall 110.

[0124] like Figure 1 As shown, corner brackets 101 are provided at the corners of the top frame 111. In this way, the box body 100 can be fixed by the corner brackets 101.

[0125] like Figures 2 to 10 As shown, the top plate 115 overlaps the top surface of the top side beam 112. The top plate 115 is laid on the top frame 111 and connected to the top frame 111. The top plate 115 includes a corrugated plate 116 and a flat plate 117. The corrugated plate 116 can be a corrugated plate of the prior art. The top and bottom surfaces of the flat plate 117 are both flat. The corrugated plate 116 and the flat plate 117 are arranged sequentially along the length of the box body 100. Along the length of the box body 100, the ends of the top plate 115 and the ends of the flat plate 117 overlap and are welded together.

[0126] The plate 117 is provided with an explosion-proof port 119. Along the width direction of the enclosure 100, the explosion-proof port 119 is located approximately in the middle of the plate 117. Along the length direction of the enclosure 100, the explosion-proof port 119 is located approximately in the middle of the plate 117.

[0127] Furthermore, such as Figures 1 to 3 As shown, a corrugated plate 116 is provided between two adjacent flat plates 117 along the length direction of the box body 100. This further increases the strength of the top wall 110.

[0128] like Figures 1 to 3 , Figure 7 , Figure 9 , Figure 10 , Figure 13 , Figure 15 , Figure 21 ,as well as Figure 24As shown, the energy storage container also includes an explosion-proof valve assembly 130. The explosion-proof valve assembly 130 includes an explosion-proof valve 131. The explosion-proof valve 131 is detachably connected to the flat plate 117. Along the length of the container, the explosion-proof valve 131 is located between the two ends of the top wall. The explosion-proof valve 131 covers the explosion-proof port 119. Thus, when a fire occurs inside the container 100, the temperature and pressure of the gas inside the container 100 increase. When the gas pressure inside the container 100 exceeds the threshold set by the explosion-proof valve 131, the explosion-proof valve 131 releases the gas from the container 100, thereby reducing the gas pressure inside the container 100 and preventing an explosion of the container 100.

[0129] When the temperature of the gas inside the enclosure 100 rises, the hotter gas rises preferentially. An explosion-proof valve 131 is located on the top wall 110, allowing for faster gas discharge from the enclosure 100. Furthermore, it prevents the accumulation of hot gas at the top of the enclosure 100, thus more effectively reducing the gas pressure inside the enclosure 100.

[0130] In this embodiment, the top wall 110 includes a corrugated plate 116 and a flat plate 117. The corrugated plate 116 can increase the strength of the top plate 115. In addition, the flat plate 117 is equipped with an explosion-proof valve 131, which can discharge the gas in the box 100 more quickly and prevent the high-temperature gas from accumulating at the top of the box 100, thereby more effectively reducing the gas pressure in the box 100.

[0131] Optionally, such as Figure 21 As shown, the energy storage container also includes an explosion-proof mounting component 120. The explosion-proof mounting component 120 is connected to the flat plate 117. The explosion-proof mounting component 120 includes a connecting portion 121. The connecting portion 121 is a columnar structure. The connecting portion 121 is connected to the flat plate 117. The connecting portion 121 extends below the flat plate 117. The connecting portion 121 has a blind mounting hole 122. The axial direction of the blind mounting hole 122 is parallel to the height direction of the container 100 (a vertical example, i.e., the length direction of the corner post assembly 161 described later). The blind mounting hole 122 is open at its top. The blind mounting hole 122 has internal threads. The flat plate 117 has a flat plate hole. The flat plate hole and the explosion-proof hole are separated. The connecting portion 121 is located at the flat plate hole. Specifically, the top of the connecting portion 121 passes through the flat plate hole. The explosion-proof valve assembly 130 also includes an explosion-proof fastener 132. The explosion-proof fastener 132 can be a bolt. The explosion-proof fastener 132 passes through the explosion-proof valve 131. Explosion-proof fastener 132 is threaded into mounting blind hole 122. Thus, explosion-proof valve 131 and plate 117 can be connected via explosion-proof fastener 132 and explosion-proof mounting part 120, providing a strong connection between explosion-proof valve 131 and plate 117. Furthermore, it facilitates the installation and removal of explosion-proof valve 131.

[0132] For further information, please continue to refer to [link / reference]. Figure 21The explosion-proof mounting component 120 also includes a connecting plate portion 123. The connecting plate portion 123 is a circumferentially closed annular structure that surrounds a connecting plate hole. The top end of the connecting portion 121 is connected to the connecting plate portion 123. The connecting plate portion 123 has a mounting hole spaced apart from the connecting plate hole. The top end of the connecting portion 121 passes through the mounting hole. The connecting portion 121 extends below the connecting plate portion 123. The connecting plate portion 123 is located above the plate 117. The connecting plate portion 123 surrounds the connecting plate hole, communicating with the explosion-proof opening 119. The connecting plate portion 123 is fitted to the top surface of the plate 117. The connecting portion 121 passes through the plate hole. The explosion-proof valve 131 passes through the connecting plate hole. Thus, the connecting plate portion 123 and the plate 117 form a stepped structure at the explosion-proof opening 119, which can effectively block water at the explosion-proof opening 119, thereby increasing the waterproof performance of the enclosure 100. Furthermore, the connecting portion 121 passes through the plate hole. The connection between the connecting part 121 and the flat plate 117 is strong.

[0133] Furthermore, the explosion-proof mounting component 120 also includes a reinforcing part 124. The reinforcing part 124 has a sleeve-like structure. The top end of the reinforcing part 124 is connected to the inner edge of the hole in the connecting plate. The bottom end of the reinforcing part 124 is located below the plate 117. The reinforcing part 124 is fitted onto the explosion-proof valve 131. This increases the strength of the explosion-proof mounting component 120.

[0134] Furthermore, the reinforcing part 124 and the connecting plate part 123 are integrally formed sheet metal parts. The connecting part 121 can be welded to the connecting plate part 123. This facilitates the processing of the explosion-proof mounting part 120.

[0135] Optionally, along the height direction of the container 100, the top surface of the explosion-proof valve assembly 130 is not higher than the top surface of the corner piece 101. This facilitates the transportation of the energy storage container.

[0136] Optionally, please return Figure 1 , Figure 2 , Figure 4 , Figure 6 , Figure 15 ,picture, Figure 20 , Figure 26 and Figure 27 The vertical wall 102 has a door frame 106 that forms the opening 105. For example, the side wall 103 has a door frame 106. The door frame 106 forms the opening 105. The energy storage container also includes a door 140 and a seal 146. The door 140 is pivotally connected to the door frame 106 to open or close the opening 105. The seal 146 is connected to the door 140. When the door 140 closes the opening 105, the seal 146 is located between the container body 100 and the door frame 106 to seal the gap between the container body 100 and the door frame 106.

[0137] The bottom end of the door frame 106 has a bottom beam (e.g., bottom side beam 107). The housing 100 also includes a water-retaining rod 108. The water-retaining rod 108 is located above the bottom beam. The water-retaining rod 108 is connected to the top surface of the bottom beam. The length direction of the water-retaining rod 108 is parallel to the length direction of the bottom beam. Along the length direction of the bottom beam, the water-retaining rod 108 extends from one end of the housing opening 105 to the other end. Thus, the water-retaining rod 108 can prevent water from entering the housing 100.

[0138] Furthermore, the water-blocking rod 108 can be a solid steel rod. Therefore, the water-blocking rod 108 has high strength.

[0139] It is understood that, in embodiments not shown, the end walls may also be provided with door frames that form the opening of the box. In this case, the bottom beam is the bottom end beam.

[0140] like Figure 20 and Figure 27 As shown, when the door 140 closes the opening 105, the water-blocking rod 108 abuts against the sealing element 146. Thus, the water-blocking rod 108 and the sealing element 146 work together to further improve the waterproof performance of the enclosure 100.

[0141] Optionally, such as Figure 1 , Figure 2 , Figure 4 , Figure 11 , Figure 14 , Figure 15 , Figure 20 , Figure 26 and Figure 27 As shown, one of the outer surface 143 and the inner surface 144 of the door 140 is a plane. For example, both are planes. When the door 140 is closed at the opening 105, the surface of the door 140 facing the interior space of the box body 100 is the inner surface 144 of the door 140, and the surface of the door 140 away from the interior space of the box body 100 is the outer surface 143 of the door 140.

[0142] Specifically, the door 140 includes an outer skin 141 and an inner skin 142. The outer skin 141 and inner skin 142 are arranged sequentially along the thickness direction of the door 140. When the door 140 is closed (opening 105), the inner skin 142 is located on the inner side of the outer skin 141, near the center of the box body 100, along the thickness direction of the door 140. When the door 140 is closed (opening 105), the thickness direction of the door 140 is parallel to the length direction of the box body 100. The inner skin 142 has an inner surface 144. The outer skin 141 has an outer surface 143. Therefore, the portion of the outer skin 141 at the outer surface 143 can be a flat plate structure. The portion of the inner skin 142 at the inner surface 144 can also be a flat plate structure. Thus, the structures of the outer skin 141 and inner skin 142 are simple.

[0143] Please refer to Figure 14 , Figure 26and Figure 27 At the outer side 143 and inner side 144 of the door 140, there is a gap between the outer skin 141 and the inner skin 142 along the thickness direction of the door 140. The edge of the outer skin 141 bends and extends towards the inner skin 142 along the thickness direction of the door 140 to form a first bend 400. The end of the first bend 400 near the inner skin 142 bends and extends towards the center of the door 140 along the height direction of the box body to form a second bend 401. The edge of the inner skin 142 is attached and welded to the second bend 401.

[0144] The door 140 also includes a frame 402. The frame 402 is located between the outer skin 141 and the inner skin 142. The frame 402 is a frame structure made of profiles. The frame 402 is connected to the outer skin 141 and the inner skin 142. As a result, the door 140 has high strength.

[0145] Thus, the outer skin 141 and the inner skin 142 form an insulation space. The door 140 also includes a door insulation layer 145. The door insulation layer 145 is located within the insulation space between the outer skin 141 and the inner skin 142. This increases the insulation performance of the enclosure 100. Furthermore, the outer surface 143 and the inner surface 144 are flat, which maximizes the dimension of the insulation space along the thickness direction of the door 140, thereby increasing the dimension of the door insulation layer 145 along the thickness direction of the door 140 and improving the insulation performance of the enclosure 100. The connection between the outer skin 141 and the inner skin 142 increases the strength of the door 140.

[0146] Optionally, such as Figure 1 , Figure 2 , Figure 4 , Figure 11 , Figure 15 , Figure 19 and Figure 20 As shown, the energy storage container also includes a locking rod assembly 150. The locking rod assembly 150 includes a locking rod, a locking seat, and a locking head. The locking rod assembly 150 can be an existing locking rod assembly, which will not be described in detail here. The locking rod assembly 150 can lock the container door 140 of the closing opening 105 to the container body 100 to prevent the container door 140 from rotating.

[0147] Alternatively, please refer to Figure 2 and Figure 12The container 100 also includes a maintenance opening 109. The maintenance opening 109 is located on one end wall 104 of the container 100. The energy storage container also includes a maintenance door 147. The maintenance door 147 is pivotally connected to the container 100 to open or close the maintenance opening 109. The energy storage container also includes an air conditioning unit 148. The air conditioning unit 148 is used to regulate the temperature inside the container 100. The air conditioning unit 148 is located on the maintenance door 147. Thus, by rotating the maintenance door 147 to open the maintenance opening 109, the air conditioning unit 148 can be maintained on the inner side 144 of the maintenance door 147 without entering the container 100. Operation is simple. Furthermore, the maintenance door 147 can be closed to personnel, and its size can be reduced. This reduces the risk of leakage at the maintenance door 147 and improves the sealing performance of the container 100.

[0148] It should be noted that when the maintenance door 147 closes the maintenance port 109, the inner side 144 of the maintenance door 147 is the surface of the maintenance door 147 that is close to the internal space of the housing 100.

[0149] It is understood that, in embodiments not shown, the maintenance port may also be located on other uprights.

[0150] like Figure 2 and Figure 12 As shown, the energy storage container also includes a pressure-lock assembly 151. The pressure-lock assembly 151 may include an existing compression lock. When the maintenance door 147 is closed to the maintenance opening 109, the maintenance door 147 can be locked by the pressure-lock assembly 151 to prevent the maintenance door 147 from rotating.

[0151] Furthermore, the air conditioning component 148 may include a dehumidifier located at the maintenance door 147. This allows for dehumidification of the interior space of the housing 100.

[0152] like Figures 1 to 5 ,as well as Figure 22 As shown, corner posts 160 are provided at the corners of the housing 100. Corner posts 160 include corner post assemblies 161 and reinforcing plates 173. Corner post assembly 161 includes an outer corner post 162 and an inner corner post 170. The length directions of both the outer corner post 162 and the inner corner post 170 extend along the height direction of the housing 100. The outer corner post 162 and the inner corner post 170 form a corner post space. The reinforcing plate 173 is located within the corner post space between the outer corner post 162 and the inner corner post 170. The reinforcing plate 173 is connected to at least one of the outer corner post 162 and the inner corner post 170. For example, the reinforcing plate 173 is connected to both the inner corner post 170 and the outer corner post 162. Along the height direction of the housing 100, the reinforcing plate 173 is located between the two ends of the corner post assembly 161. The plane containing the reinforcing plate 173 is perpendicular to the height direction of the housing 100. Therefore, the reinforcing plate 173 can increase the strength of the corner post 160, thereby enabling a larger number of energy storage containers to be stacked.

[0153] Optionally, such as Figure 22 As shown, at least one end of the reinforcing plate 173 abuts against the corner post assembly 161 along the width direction of the housing 100. For example, both ends of the reinforcing plate 173 abut against the corner post assembly 161 along the width direction of the housing 100. This further increases the strength of the corner post 160.

[0154] Optionally, such as Figure 22 As shown, at least one of the ends of the reinforcing plate 173 abuts against the corner post assembly 161 along the length of the housing 100. For example, both ends of the reinforcing plate 173 abut against the corner post assembly 161 along the length of the housing 100. This further increases the strength of the corner post 160.

[0155] like Figure 22 As shown, one end of the outer corner post 162 is connected to one end of the inner corner post 170. The other end of the outer corner post 162 is connected to the other end of the inner corner post 170. Specifically, the projection of the outer corner post 162 onto the projection plane is an outer corner projection. The projection of the inner corner post 170 onto the projection plane is an inner corner projection. One end of the outer corner projection is connected to one end of the inner corner projection. The other end of the outer corner projection is connected to the other end of the inner corner projection. In this way, the projections of the corner post assembly onto the projection plane form a circumferentially closed structure. This further increases the strength of the corner post 160.

[0156] Optionally, the inner corner pillars are constructed as a single, integrally molded part. The inner corner pillars are sheet metal parts. The outer corner pillars are also constructed as a single, integrally molded part. The outer corner pillars are sheet metal parts. Therefore, the corner pillar assembly has fewer parts, facilitating manufacturing.

[0157] Optionally, such as Figure 22 As shown, the interior corner post 170 includes a first interior corner wall 171 and a second interior corner wall 172. The end of the first interior corner wall 171 away from the second interior corner wall 172 is connected to one end of the exterior corner post 162, and the end of the second interior corner wall 172 away from the first interior corner wall 171 is connected to the other end of the exterior corner post 162. Thus, the structure of the interior corner post 170 is simple.

[0158] Furthermore, the plane containing the first inner corner wall 171 intersects (e.g., is perpendicular to) the plane containing the second inner corner wall 172. The first inner corner wall 171 is connected to the second inner corner wall 172. Specifically, along the length of the housing 100, the first inner corner wall 171 is located inside the second inner corner wall 172 near the center of the housing 100. Along the width of the housing 100, the first inner corner wall 171 is located outside the second inner corner wall 172 away from the center of the housing 100. The plane containing the first inner corner wall 171 is perpendicular to the length of the housing 100. The first inner corner wall 171 can be connected to the side panel of the side wall 103 or the door 140. The plane containing the second inner corner wall 172 is perpendicular to the width of the housing 100. The second inner corner wall 172 can be connected to the end panel of the end wall 104.

[0159] Furthermore, the first inner corner wall 171 and the second inner corner wall 172 are constructed in an L-shape. Thus, the structure of the inner corner pillar 170 is simple.

[0160] Alternatively, please continue to refer to Figure 22 The outer corner post 162 includes a first outer corner wall 163, a second outer corner wall 164, a third outer corner wall 165, a fourth outer corner wall 166, and a fifth outer corner wall 167. The planes containing the first outer corner wall 163, the third outer corner wall 165, and the fifth outer corner wall 167 are all perpendicular to the width direction of the box body 100. The planes containing the second outer corner wall 164 and the fourth outer corner wall 166 are both perpendicular to the length direction of the box body 100.

[0161] like Figure 22 As shown, along the width direction of the housing 100, the first outer corner wall 163 is located outside the first inner corner wall 171, away from the center of the housing 100. Along the length direction of the housing 100, the first outer corner wall 163 is located outside the first inner corner wall 171, away from the center of the housing 100. One end of the first outer corner wall 163 is connected to the end of the first inner corner wall 171 away from the second inner corner wall 172.

[0162] Along the length of the housing 100, the second outer corner wall 164 is located outside the first outer corner wall 163, away from the center of the housing 100. Along the width of the housing 100, the second outer corner wall 164 is located outside the first outer corner wall 163, away from the center of the housing 100. The plane containing the second outer corner wall 164 intersects the plane containing the first outer corner wall 163. One end of the second outer corner wall 164 is connected to the other end of the first outer corner wall 163, away from the first inner corner wall 171.

[0163] Along the length of the housing 100, the third outer corner wall 165 is located on the outer side of the second outer corner wall 164, away from the center of the housing 100. Along the width of the housing 100, the third outer corner wall 165 is located on the outer side of the second outer corner wall 164, away from the center of the housing 100. One end of the third outer corner wall 165 is connected to the other end of the second outer corner wall 164, away from the first outer corner wall 163.

[0164] Along the length of the housing 100, the fourth outer corner wall 166 is located on the outer side of the third outer corner wall 165, away from the center of the housing 100. Along the width of the housing 100, the fourth outer corner wall 166 is located on the inner side of the third outer corner wall 165, near the center of the housing 100. One end of the fourth outer corner wall 166 is connected to the other end of the third outer corner wall 165, away from the second outer corner wall 164.

[0165] Along the length of the housing 100, the fifth outer corner wall 167 is located inside the fourth outer corner wall 166 near the center of the housing 100. Along the width of the housing 100, the fifth outer corner wall 167 is located inside the fourth outer corner wall 166 near the center of the housing 100. One end of the fifth outer corner wall 167 is connected to the other end of the fourth outer corner wall 166 away from the third outer corner wall 165. The other end of the fifth outer corner wall 167 is connected to the other end of the second inner corner wall 172 away from the first inner corner wall 171. Therefore, the outer corner post 162 has high strength.

[0166] Please continue to refer to this. Figure 22 The reinforcing plate 173 includes a reinforcing body 174. The projection of the reinforcing body 174 onto the projection plane includes two parallel long sides and two parallel short sides. The projection plane is perpendicular to the height direction of the housing 100. The dimensions of the long sides are larger than the dimensions of the short sides. The long sides are parallel to the width direction of the housing 100. The short sides are parallel to the length direction of the housing 100.

[0167] One edge 176 of the reinforcing body 174, corresponding to its long side, abuts against the second outer corner wall 164. Another edge 176 of the reinforcing body 174, corresponding to its long side, abuts against the fourth outer corner wall 166. One edge 177 of the reinforcing body 174, corresponding to its short side, abuts against the third outer corner wall 165. Another edge 177 of the reinforcing body 174, corresponding to its short side, abuts against the fifth outer corner wall 167. There is a gap between the reinforcing body 174 and the first inner corner wall 171. Therefore, the reinforcing plate 173 has high strength.

[0168] like Figure 22As shown, a portion of the reinforcing body 174 corresponding to the long side of the edge 176 extends and protrudes along the length direction of the short side to form a protrusion 175. The protrusion 175 has a rectangular structure. The end of the protrusion 175 away from the reinforcing body 174 abuts against the first inner corner wall 171. The end of the protrusion 175 along the width direction of the housing 100 abuts against the first outer corner wall 163. Along the width direction of the housing 100, there is a gap between the protrusion 175 and the second inner corner wall 172. This further increases the strength of the reinforcing plate 173.

[0169] The use of external and internal corner posts, along with reinforcing plates, results in lighter corner posts, reducing container transportation costs. The corner posts offer high stability, preventing deformation during stacking. This reduces the likelihood of containers tilting or collapsing at higher levels. Furthermore, the combination of external and internal corner posts with reinforcing plates ensures high strength and stability, making the corner posts less prone to fatigue cracks, deformation, or even breakage when transporting and stacking containers in extreme maritime environments (such as high humidity, salt spray corrosion, and long-term vibration).

[0170] It should be noted that the projection of the edge 176 corresponding to the long side of the reinforcing body 174 onto the projection plane is the long side. The projection of the edge 177 corresponding to the short side of the reinforcing body 174 onto the projection plane is the short side.

[0171] Alternatively, please refer to Figure 1 , Figure 9 , Figure 10 , Figure 16 and Figure 23 The top wall 110 also includes a partition 118 and a top insulation layer (not shown). The partition 118 is connected to the top frame 111. The partition 118 is located below the top plate 115. A top gap 180 exists between the partition 118 and the top plate 115. The top insulation layer is located within the top gap 180. An explosion-proof valve assembly 130 passes through the partition 118. Specifically, the partition 118 includes end partitions and middle partitions. The periphery of the end partitions is circumferentially connected to the top beam 114, the top crossbeam 113 adjacent to the top beam 114, and two top side beams 112. The periphery of the middle partitions is circumferentially connected to two top crossbeams 113 and two top side beams 112 adjacent along the length direction of the enclosure 100. This increases the insulation performance of the top wall 110.

[0172] Optionally, such as Figure 16 and Figure 23 As shown, the energy storage container also includes an aerosol fire extinguishing device 181. The aerosol fire extinguishing device 181 is located below and connected to the partition 118. Thus, when a fire occurs inside the container 100, the aerosol fire extinguishing device 181 sprays extinguishing media to extinguish the fire. The connection of the aerosol fire extinguishing device 181 to the partition 118 allows it to spray extinguishing media downwards from the partition 118, resulting in more effective fire extinguishing.

[0173] Optionally, such as Figure 23 As shown, fire extinguishing nuts 183 are welded to the partition 118. The energy storage container also includes fire extinguishing fasteners 182. The aerosol extinguishing device 181 is threadedly connected to the fire extinguishing nut 183 via the fire extinguishing fasteners 182. This facilitates the replacement of the aerosol extinguishing device 181.

[0174] Alternatively, please refer to Figures 1 to 6 , Figure 15 , Figures 17 to 19 and Figure 25 The enclosure 100 also includes a rain guide 190 disposed directly above the opening 105. The rain guide 190 is an elongated structure. The length of the rain guide 190 extends along the width direction of the door 140 (that is, the length direction of the bottom beam). The rain guide 190 is connected to the enclosure 100. The rain guide 190 extends to the outer side of the vertical wall 102. This reduces the amount of rainwater flowing to the opening 105, thereby improving the waterproof performance of the enclosure 100.

[0175] Furthermore, the top of the door frame 106 is a top beam, such as a top side beam 112. A rain guide 190 is connected to the top beam. Thus, the connection between the rain guide 190 and the housing 100 is secure.

[0176] like Figure 19 and Figure 25 As shown, the rain guide 190 includes a connecting wall 191 and a rain guide wall 192. The connecting wall 191 is attached to the outer side 143 of the top beam, away from the center of the housing 100. The connecting wall 191 is connected to the outer side 143 of the top beam, for example, to the outer side 143 of the top side beam 112, away from the center of the housing 100 along the width direction of the housing 100. One end of the rain guide wall 192 is connected to the top end of the connecting wall 191. The rain guide wall 192 extends to the outer side of the connecting wall 191, away from the top beam, for example, to the outer side of the connecting wall 191, away from the top side beam 112. Thus, the contact area between the connecting wall 191 and the top beam is large, resulting in a high connection strength. Furthermore, the rain guide 190 has high strength.

[0177] Furthermore, the rain guide 190 also includes a rain shield 193. The rain shield 193 and the connecting wall 191 are spaced apart. The top end of the rain shield 193 is connected to the end of the rain guide 192 away from the connecting wall 191. This allows for more effective rain protection. In addition, the rain shield 193 further increases the strength of the rain guide 190.

[0178] like Figure 19 and Figure 25 As shown, the plane containing the rain guide wall 192 is inclined at the height of the housing 100. The top of the rain guide wall 192 is connected to the top of the connecting wall 191. This facilitates drainage.

[0179] Optionally, the end of the rain deflector 190 furthest from the housing 100 (the end where the rain shield 193 is located) is located outside the locking bar assembly 150. Thus, when the housing door 140 closes the opening 105, the rain deflector 190 shields the locking bar assembly 150, reducing water flow to the top lock head and reducing water flow to the seal 146.

[0180] Optionally, the end of the rain guide 190 away from the container body 100 does not protrude to the outside of the top corner member 101. This facilitates the transportation of the energy storage container.

[0181] Optionally, a rain guide 190 is also provided on the top beam 114 of the end wall where the maintenance door 147 is located. Thus, a rain guide 190 is also provided above the maintenance opening 109. Along the length of the housing 100, the rain guide 190, connected to the top beam 114, extends to the outer side of the top beam 114 away from the center of the housing 100. Therefore, the rain guide 190 serves to block water at the end wall 104 where the maintenance opening 109 is located, reducing the probability of water flowing into the maintenance opening 109.

[0182] Specifically, such as Figure 17 and Figure 18 As shown, the rain guide 190 includes a second rain guide 195 disposed on the top side beam 112 and a first rain guide 194 disposed on the top end beam 114.

[0183] Second Implementation Method

[0184] In the second embodiment, such as Figure 28 As shown, the plane containing the rain guide wall 292 is parallel to the horizontal direction. Therefore, the structure of the rain guide is simple.

[0185] Optionally, such as Figure 29 As shown, the explosion-proof mounting component only has a connecting part 221. The connecting part 221 is located below the plate 217 and is connected (e.g., welded) to the plate 217. At this time, the plate hole connects to the mounting blind hole. Thus, the structure of the top wall is simple.

[0186] Optionally, such as Figure 30 As shown, the plane containing the first interior corner wall 271 is parallel to the plane containing the second interior corner wall 272. The interior corner post also includes a transition interior corner wall 278. The plane containing the transition interior corner wall 278 intersects (e.g., is perpendicular to) the plane containing the first interior corner wall 271. Along the length of the box, one end of the transition interior corner wall 278 is connected to the first interior corner wall 271, and the other end of the transition interior corner wall 278 is connected to the second interior corner wall 272, so that the first interior corner wall 271 and the second interior corner wall 272 are connected through the transition interior corner wall 278.

[0187] Specifically, along the length of the box (an example of the second horizontal direction), the first inner corner wall 271 is located on the inner side of the transition inner corner wall 278 near the center of the box, and the second inner corner wall 272 is located on the outer side of the transition inner corner wall 278 away from the center of the box. Along the width of the box (an example of the first horizontal direction), the first inner corner wall 271 is located on the outer side of the transition inner corner wall 278 away from the center of the box, and the second inner corner wall 272 is located on the inner side of the transition inner corner wall 278 near the center of the box. The plane containing the first inner corner wall 271 and the plane containing the second inner corner wall 272 are both perpendicular to the length of the box. The plane containing the transition inner corner wall 278 is perpendicular to the width of the box. The first inner corner wall 271 can be connected to a side panel or a door of the side wall.

[0188] Furthermore, the first inner corner wall 271, the transition inner corner wall 278, and the second inner corner wall 272 are constructed in a Z-shape. Thus, the structure of the inner corner pillar is simple.

[0189] The projection of the reinforced body onto the projection plane forms a long edge that also abuts against the second inner corner wall 272.

[0190] Along the width direction of the box, the end of the protrusion away from the first outer corner wall abuts against the transition inner corner wall 278.

[0191] The other settings of the second embodiment are largely the same as those of the first embodiment, and will not be described in detail here.

[0192] Third Implementation Method

[0193] In the third embodiment, such as Figure 31 As shown, the explosion-proof mounting component also includes a connecting plate portion 323. The top end of the connecting portion 321 passes through a mounting hole in the connecting plate portion 323. The top end of the connecting portion 321 is connected (e.g., welded) to the connecting plate portion 323. A mounting blind hole connects to the plate hole. The connecting portion 321 extends below the connecting plate portion 323. The connecting plate portion 323 is located below the plate 317. The connecting plate portion 323 is fitted to the bottom surface of the plate 317. The connecting plate portion 323 is welded to the bottom surface of the plate 317. Thus, the energy storage container is flat on the top surface of the plate 317, resulting in a simple structure. The connecting plate portion 323 increases the connection strength between the connecting portion 321 and the plate 317.

[0194] Furthermore, the explosion-proof mounting component also includes a reinforcing portion 324. The top end of the reinforcing portion 324 is connected to the connecting plate portion 323. The bottom end of the reinforcing portion 324 is located below the flat plate 317. Both the reinforcing portion 324 and the connecting plate portion 323 can be constructed as circumferentially closed annular structures. Thus, the entire structure formed by the reinforcing portion 324 and the connecting plate portion 323 is a circumferentially closed annular structure. The area enclosed by the entire structure formed by the reinforcing portion 324 and the connecting plate portion 323 communicates with the explosion-proof port. The area enclosed by the entire structure formed by the reinforcing portion 324 and the connecting plate portion 323 is fitted onto the explosion-proof valve. This increases the strength of the explosion-proof mounting component.

[0195] like Figure 31 As shown, the reinforcing part 324 includes a side sleeve 325 and a base plate 326. Both the side sleeve 325 and the base plate 326 are constructed as circumferentially closed annular structures. The side sleeve 325 is a sleeve-shaped structure. The top end of the side sleeve 325 is connected to the inner edge of the connecting plate portion 323 (the inner wall surface of the connecting plate hole in the connecting plate portion 323). The side sleeve 325 extends downward from the connecting plate portion 323. The side sleeve 325 is fitted onto the explosion-proof valve. The connecting portion 321 is located on the outer side of the side sleeve 325 away from the explosion-proof valve. The plane containing the base plate 326 is parallel to the plane containing the connecting plate portion 323. The base plate 326 is located below the connecting plate portion 323. The base plate 326 and the connecting plate portion 323 are spaced apart. The bottom end of the side sleeve 325 is connected to the inner edge of the base plate 326 (the inner wall surface of the area enclosed by the base plate 326). The base plate 326 protrudes from the side sleeve 325 in a direction away from the explosion-proof valve. This can further increase the strength of explosion-proof installation components.

[0196] like Figure 32 As shown, the reinforcing plate only includes the reinforcing body 374. The reinforcing plate does not include any protrusions. Therefore, the structure of the reinforcing plate is simple.

[0197] The other settings of the third embodiment are largely the same as those of the first embodiment, and will not be described in detail here.

[0198] This utility model has been described through the above embodiments. However, it should be understood that the above embodiments are for illustrative purposes only and are not intended to limit the utility model to the described embodiments. Furthermore, those skilled in the art will understand that this utility model is not limited to the above embodiments, and many more variations and modifications can be made based on the teachings of this utility model, all of which fall within the scope of protection claimed by this utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.

[0199] Unless otherwise defined, the technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art. The terminology used herein is for descriptive purposes only and is not intended to limit the scope of the invention. Terms such as “component” as used herein may refer to a single part or a combination of multiple parts. Terms such as “installation” or “installation” as used herein may refer to one component being directly attached to another component or one component being attached to another component via an intermediary. A feature described in one embodiment herein may be applied, alone or in combination with other features, to another embodiment, unless that feature is not applicable in that other embodiment or is otherwise stated.

Claims

1. An energy storage container, characterized by, The energy storage container includes: The enclosure includes a top wall, which includes a corrugated plate and a flat plate. Along the length of the enclosure, the corrugated plate and the flat plate are sequentially arranged and connected. The flat plate has an explosion-proof opening. An explosion-proof valve assembly, comprising an explosion-proof valve connected to the plate and covering the explosion-proof port.

2. The energy storage container of claim 1, wherein, The energy storage container also includes: An explosion-proof mounting component is provided, which is connected to the flat plate. The explosion-proof mounting component includes a connecting portion that is connected to the flat plate and extends below the flat plate. The connecting portion has a blind mounting hole with its axial direction parallel to the height direction of the housing and an open top. The explosion-proof valve assembly also includes explosion-proof fasteners, which are inserted through the explosion-proof valve and threaded to the mounting blind hole.

3. The energy storage container of claim 2, wherein, The explosion-proof mounting component also includes a connecting plate portion, the top end of which is connected to the connecting plate portion and extends to the bottom of the connecting plate portion. The connecting plate is located above the flat plate and fits against the top surface of the flat plate; the connecting part passes through the flat plate, or The connecting plate is located below the flat plate and is attached to the bottom surface of the flat plate.

4. The energy storage container of claim 3, wherein, The explosion-proof mounting component also includes a reinforcing part, the top end of which is connected to the connecting plate part, and the bottom end of which is located below the flat plate.

5. The energy storage container of claim 2, wherein, The connecting part is located below the flat plate and is connected to the flat plate.

6. The energy storage container of any one of claims 1 to 5, wherein, The top wall also includes a corner piece, and the top surface of the explosion-proof valve assembly is not higher than the top surface of the corner piece.

7. The energy storage container of any one of claims 1 to 5, wherein, The energy storage container includes a door and seals. The container body also has vertical walls with door frames forming the opening. The door is pivotally connected to the door frame to open or close the opening. When the box door is closed, the sealing element is located between the box body and the door frame to seal the gap between the door frame and the box door. The bottom end of the door frame has a bottom beam, and the box body also includes a water-blocking bar located above the bottom beam and connected to the top surface of the bottom beam, the length direction of the water-blocking bar being parallel to the length direction of the bottom beam.

8. The energy storage container of claim 7, wherein, When the box door is closed, the water-blocking rod abuts against the sealing element.

9. The energy storage container of claim 7, wherein, One of the outer and inner sides of the box door is a plane.

10. The energy storage container according to claim 7, characterized in that, The door includes an outer skin and an inner skin, with a gap between the outer skin and the inner skin. The door also includes a door insulation layer located within the gap between the outer skin and the inner skin.

11. The energy storage container according to any one of claims 1 to 5, characterized in that, The container also includes a maintenance opening, and the energy storage container further includes a maintenance door, which is pivotally connected to the container to open or close the maintenance opening. The energy storage container also includes an air conditioning unit, which is located at the maintenance door.

12. The energy storage container according to any one of claims 1 to 5, characterized in that, The top wall includes a top plate, a top frame, a partition, and a top insulation layer. The top plate includes the corrugated plate and the flat plate. The partition and the top plate are both connected to the top frame. The partition is located below the top plate and there is a top gap between the partition and the top plate. The top insulation layer is located within the top gap. The explosion-proof valve assembly passes through the partition.

13. The energy storage container according to claim 12, characterized in that, The energy storage container also includes an aerosol fire extinguishing device, which is located below the partition and connected to the partition.

14. The energy storage container according to claim 13, characterized in that, The energy storage container also includes fire-fighting fasteners, the partition is provided with fire-fighting nuts, and the aerosol extinguishing device is threadedly connected to the fire-fighting nuts through the fire-fighting fasteners.

15. The energy storage container according to claim 12, characterized in that, The top frame includes a top side beam and a top cross beam, and the partition is connected to the top cross beam and the top side beam.

16. The energy storage container according to any one of claims 1 to 5, characterized in that, The enclosure has vertical walls, and the vertical walls have an opening and a maintenance opening. The enclosure also includes a rain guide, which is provided directly above the enclosure opening and / or directly above the maintenance opening. The rain guide is connected to the enclosure and extends to the outside of the vertical wall.

17. The energy storage container according to claim 16, characterized in that, The rain guide includes: A connecting wall, which is fitted to and connected to the housing; A rain guide wall, one end of which is connected to the top of the connecting wall and extends to the outside of the connecting wall.

18. The energy storage container according to claim 17, characterized in that, The rain guide also includes a rain shield wall, which is spaced apart from the connecting wall, and the top of the rain shield wall is connected to the end of the rain guide wall that is away from the connecting wall.

19. The energy storage container according to claim 17, characterized in that, The plane containing the rain-guiding wall is parallel to the horizontal direction, or The plane containing the rain guide wall is inclined to the height direction of the box body, and the top of the rain guide wall is connected to the top of the connecting wall.

20. The energy storage container according to claim 16, characterized in that, The rain guide is provided above the container opening. The energy storage container includes a door and a locking rod assembly. The container body has corner brackets. The door is pivotally connected to the container body to open or close the container opening. When the box door is closed, the locking rod assembly is used to lock the box door to the box body. The end of the rain guide that is away from the box body is located on the outside of the locking rod assembly and does not protrude to the outside of the top corner piece.