Energy storage container
By using flexible fireproof and heat-insulating components and a detachable top cover assembly, the problems of discontinuous insulation materials and insufficient internal height of traditional energy storage containers are solved, resulting in better thermal insulation and fireproof performance and simplified installation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- DONGGUAN SOUTHERN CIMC LOGISTIC EQUIP MFG CO
- Filing Date
- 2026-01-30
- Publication Date
- 2026-05-05
AI Technical Summary
The fireproof and heat insulation materials of traditional energy storage containers are discontinuous, forming thermal bridges and reducing the heat insulation effect. In addition, the internal height of half-height energy storage containers is insufficient, making it impossible to directly enter for operation.
Flexible first and second fireproof insulation components are used, which are detachably connected by the top cover assembly to ensure the continuity and integrity of the insulation components. The top cover assembly is installed after the energy storage container is fully assembled, which improves installation efficiency.
It enhances the thermal insulation and fire resistance of energy storage containers, meets the usage requirements of semi-high energy storage containers, simplifies the installation process, and improves installation efficiency.
Smart Images

Figure CN121983705A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of energy storage container technology, and more specifically to an energy storage container. Background Technology
[0002] With the development of the energy storage industry, the requirements for the fire resistance and thermal insulation performance of energy storage containers are becoming increasingly stringent, as are their external dimensions. Even semi-high energy storage containers have emerged, with heights typically between 1295mm and 1448mm. Traditional energy storage containers use rock wool boards or loose rock wool filled inside the top beams and roof panels for fire resistance and thermal insulation. However, this discontinuous application of refractory materials creates thermal bridges, resulting in a loss of insulation capacity and significantly reducing the overall insulation effect. Furthermore, the internal height of semi-high energy storage containers is less than 1200mm, making it impossible for workers to directly enter and operate them.
[0003] Therefore, an energy storage container is needed to at least partially solve the above problems. Summary of the Invention
[0004] The summary section introduces a series of simplified concepts, which will be further explained in detail in the detailed description section. This summary section is not intended to limit the key and essential technical features of the claimed technical solution, nor is it intended to determine the scope of protection of the claimed technical solution.
[0005] To at least partially address the above problems, this application provides an energy storage container, comprising: The enclosure includes a first fireproof and heat-insulating component and a top opening, wherein the first fireproof and heat-insulating component is disposed at least around the top opening on the top of the enclosure; A top cover assembly, detachably connected to the top of the enclosure and movable between a closed position covering the top opening and an open position removed from the enclosure, the top cover assembly including a top plate and a second fireproof insulation member, the outer peripheral edge of the top plate being detachably connected to the top of the enclosure, and the second fireproof insulation member covering the bottom of the top plate. The first fireproof and heat-insulating component and the second fireproof and heat-insulating component are flexible. When the top cover assembly is in the closed position, the first fireproof and heat-insulating component can abut against the outer peripheral edge of the second fireproof and heat-insulating component along the circumference of the top opening.
[0006] According to the energy storage container of this application, the first and second fireproof insulation components are flexible, allowing for foldable and deformable installation. This ensures the continuity and integrity of the first and second fireproof insulation components, preventing excessive thermal bridges caused by discontinuities in the fireproof insulation, thereby improving the thermal insulation and fireproof performance of the energy storage container. Furthermore, the top cover assembly is detachably connected to the top of the container body. Therefore, during the final assembly of the energy storage container, the top cover assembly can be installed after all internal processes are completed, simplifying the installation process and improving efficiency. After the top cover assembly is installed, the first fireproof insulation component can abut against the outer edge of the second fireproof insulation component along the circumference of the top opening, ensuring continuous and uninterrupted fireproof insulation material, thus meeting the thermal insulation and fireproof requirements of the energy storage container.
[0007] Optionally, the top cover assembly further includes at least two reinforcing members, which are disposed below the top plate along the width or length direction of the top cover assembly and connected to the top plate. The at least two reinforcing members are arranged in parallel and spaced apart, and the first fireproof and heat-insulating member covers the side and bottom surfaces of the reinforcing members.
[0008] Optionally, the enclosure includes a pair of top side beams, a pair of top cross beams, and a pair of end lintels. The pair of top side beams are located on both sides of the top of the enclosure, and the pair of top cross beams are located at both ends of the top of the enclosure. The two ends of the top cross beams are respectively connected to the pair of top side beams. The end lintels are disposed on the top of the top cross beams along the length direction of the top cross beams and extend toward the inside of the enclosure. The pair of top side beams and the pair of end lintels surround to form the top opening. The first fireproof and heat-insulating member is disposed at least on the top of the pair of top side beams and the pair of end lintels.
[0009] Optionally, the outer peripheral edge of the top plate is detachably connected to the pair of top side beams and the pair of end lintels by fasteners, and the energy storage container also includes a waterproof strip disposed around the top opening at the connection position between the top plate and the pair of top side beams and the pair of end lintels.
[0010] Optionally, the enclosure further includes a side water baffle and an end water baffle. The side water baffle is disposed on the top of the top side beam along the length direction of the top side beam and abuts against the outer end face of the first fireproof and heat-insulating component. The end water baffle is disposed on the top of the end lintel along the length direction of the top crossbeam and abuts against the outer end face of the first fireproof and heat-insulating component.
[0011] Optionally, the enclosure further includes a side wall panel disposed on the side of the enclosure and below the top side beam, wherein the first fireproof and heat-insulating component covers the inner surface of the side wall panel, the lower surface of the top side beam, and the inner side surface of the top side beam.
[0012] Optionally, the enclosure further includes a side fireproof door frame and a side fireproof door panel, the side fireproof door frame and the side fireproof door panel being disposed on the side of the enclosure, the side fireproof door frame being disposed below the top side beam, the side fireproof door panel being pivotally connected to the side fireproof door frame, and the first fireproof and heat-insulating member at least covering the inner surface of the side fireproof door frame, the upper surface of the side fireproof door frame and the inner side of the top side beam.
[0013] Optionally, the enclosure further includes an end wall panel disposed at the end of the enclosure and below the top crossbeam, wherein the first fireproof and heat-insulating component covers the inner surface of the end wall panel, the lower surface of the top crossbeam, the inner surface of the top crossbeam, and the lower surface of the end lintel.
[0014] Optionally, the enclosure further includes an end door frame and an end door panel, the end door frame and the end door panel being disposed at the end of the enclosure, the end door frame being disposed below the top crossbeam, the end door panel being pivotally connected to the end door frame, and the first fireproof and heat-insulating component covering at least the top surface of the end door frame, the inner side of the top crossbeam and the lower surface of the end lintel.
[0015] Optionally, the energy storage container further includes a third fireproof insulation component, which covers the inner surfaces of the first and second fireproof insulation components. The third fireproof insulation component is made of a different material than the first and second fireproof insulation components and is flexible.
[0016] Optionally, the thickness of the third fireproof and heat-insulating component is less than the thickness of the first fireproof and heat-insulating component and the second fireproof and heat-insulating component, wherein the first fireproof and heat-insulating component and the second fireproof and heat-insulating component are one of fireproof fiber blanket and fireproof heat-insulating blanket, and the third fireproof and heat-insulating component is aluminum foil cloth. Attached Figure Description
[0017] The following drawings, which are incorporated herein by reference and used to understand this application, illustrate embodiments of the application and their descriptions, serving to explain the principles of the application.
[0018] In the attached image: Figure 1 This is a perspective view of an energy storage container according to a preferred embodiment of this application; Figure 2 for Figure 1 Another perspective view of the energy storage container, with the cover in the open position; Figure 3 for Figure 1 A cross-sectional schematic diagram of a partial structure of the energy storage container, showing the top cover assembly and waterproof sealing strip; Figure 4 for Figure 1 A cross-sectional view of a partial structure of the energy storage container, with the top cover assembly in the closed position; Figures 5 to 8 These are cross-sectional schematic diagrams of a partial structure of the energy storage container in Figure 1.
[0019] Explanation of reference numerals in the attached figures: 100: Energy Storage Container 110: Box 111: Top Side Beam 112: Top crossbeam 113: Side wall panel 114: End wall panel 115: First fireproof and heat-insulating component 116: Top opening 117: Side fireproof door frame 118: Side fireproof door panel 119: Side water baffle 120: Top cover assembly 121: Top Plate 122: Second fireproof and heat-insulating component 123: Reinforcing components 124: Through hole 130: Fasteners 141: End door frame 142: End door panel 143: End water-blocking component 144: First lateral extension 145: First vertical extension 146: Second lateral extension 147: Second vertical extension 148: Nut 149: Endplate 150: Waterproof sealing strip 160: A setback Detailed Implementation
[0020] The following description provides numerous specific details to offer a more thorough understanding of this application. However, it will be apparent to those skilled in the art that this application can be practiced without one or more of these details. In other instances, certain technical features well-known in the art have not been described to avoid confusion with this application.
[0021] To fully understand this application, a detailed description will be provided below. It is obvious that the implementation of embodiments of this application is not limited to the specific details familiar to those skilled in the art. Preferred embodiments of this application are described in detail below; however, other embodiments may also be available in addition to these detailed descriptions.
[0022] It should be noted that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the exemplary embodiments according to this application. Furthermore, it should be understood that when the terms "comprising" and / or "including" are used in this specification, they indicate the presence of the stated features, integrals, steps, operations, elements, and / or components, but do not exclude the presence or addition of one or more other features, integrals, steps, operations, elements, components, and / or combinations thereof.
[0023] In understanding the scope of this application, the term "comprising" and its derivatives, as used herein, are intended to be open-ended terms that specify the presence of a described feature, element, component, group, whole, and / or step, but do not exclude the presence of other undescribed features, elements, components, groups, wholes, and / or steps. This concept also applies to words with similar meanings, such as the terms "comprising," "having," and their derivatives.
[0024] The term "attached" or "joined" as used herein includes: a construction in which one element is directly fixed to another element by fixing it directly to another element; a construction in which one element is indirectly fixed to another element by fixing it to an intermediate member, which in turn is fixed to another element; and a construction in which one element is integral with another element, that is, one element is substantially part of another element. This definition also applies to words with similar meanings, such as "connect," "joint," "couple," "install," "adhere," "fix," and their derivatives. Finally, degree terms such as "substantially," "approximately," and "approximately" as used herein indicate the amount of deviation from which modifications to the terminology do not significantly alter the final result.
[0025] Ordinal numbers such as “first” and “second” used in this application are merely identifiers and have no other meaning, such as a specific order. Moreover, for example, the term “first component” does not imply the existence of a “second component”, and the term “second component” does not imply the existence of a “first component”.
[0026] It should be noted that the terms “up,” “down,” “front,” “back,” “left,” “right,” “inner,” “outer,” and similar expressions used in this article are for illustrative purposes only and are not intended to be restrictive.
[0027] In this document, terms such as “equal” and “same” are not strict mathematical and / or geometric limitations, but also include errors that are understandable to those skilled in the art and permissible in manufacturing or use.
[0028] Unless otherwise stated, the numerical ranges in this document include not only the entire range within its two endpoints, but also the subranges contained therein.
[0029] Exemplary embodiments according to this application will now be described in more detail with reference to the accompanying drawings. However, these exemplary embodiments may be implemented in many different forms and should not be construed as being limited to the embodiments set forth herein. It should be understood that these embodiments are provided so that the disclosure of this application is thorough and complete, and that the concept of these exemplary embodiments is fully conveyed to those skilled in the art.
[0030] This application provides an energy storage container 100, which is suitable for energy storage containers with fireproof and heat insulation performance requirements, and particularly suitable for half-height energy storage containers with fireproof and heat insulation performance requirements, whose height is typically between 1295mm and 1448mm. The following will be combined with... Figures 1 to 8 A detailed description is provided of the energy storage container 100 according to this application.
[0031] like Figures 1 to 3 As shown, the energy storage container 100 mainly includes a container body 110 and a top cover assembly 120.
[0032] The enclosure 110 has a rectangular parallelepiped structure and a top opening 116. The top opening 116 is generally rectangular. The enclosure 110 includes a first fireproof and heat-insulating member 115, which is disposed at least around the top opening 116 on the top of the enclosure 110. The first fireproof and heat-insulating member 115 is connected to corresponding parts of the enclosure 110 by studs 160. The first fireproof and heat-insulating member 115 has fireproof and heat-insulating properties. The top cover assembly 120 has a rectangular plate-like structure.
[0033] The top cover assembly 120 is detachably connected to the top of the housing 110, allowing it to move between a closed position covering the top opening 116 and an open position removed from the housing 110. The housing 110 is detachably connected to its top via fasteners 130. The top cover assembly 120 includes a top plate 121 and a second fire-resistant heat insulation member 122. The second fire-resistant heat insulation member 122 is connected to the top plate 121 via studs 160. The second fire-resistant heat insulation member 122 has fire-resistant and heat-insulating properties. In this embodiment, the outer peripheral edge of the top plate 121 is detachably connected to the top of the housing 110 via fasteners 130, and the second fire-resistant heat insulation member 122 covers the bottom of the top plate 121. Figure 3As shown, the bottom of the top plate 121 is covered with two layers of second fireproof and heat-insulating material 122 to further improve the fireproof and heat-insulating performance of the top cover assembly 120.
[0034] The first fireproof and heat-insulating element 115 and the second fireproof and heat-insulating element 122 are flexible. When the top cover assembly 120 is in the closed position, the first fireproof and heat-insulating element 115 can abut against the outer peripheral edge of the second fireproof and heat-insulating element 122 along the circumferential direction of the top opening 116. The first fireproof and heat-insulating element 115 and the second fireproof and heat-insulating element 122 can be one of a fireproof fiber blanket and a fireproof thermal insulation blanket. Preferably, the first fireproof and heat-insulating element 115 and the second fireproof and heat-insulating element 122 are made of the same material. It is understood that the first fireproof and heat-insulating element 115 and the second fireproof and heat-insulating element 122 can also be made of different materials. For example, the first fireproof and heat-insulating element 115 can be one of a fireproof fiber blanket and a fireproof thermal insulation blanket, and the second fireproof and heat-insulating element 122 can be the other of a fireproof fiber blanket and a fireproof thermal insulation blanket. Depending on the need, the first fireproof and heat-insulating element 115 and the second fireproof and heat-insulating element 122 can also be made of other flexible fireproof and heat-insulating materials.
[0035] According to the energy storage container 100 of this application, the first fireproof insulation component 115 and the second fireproof insulation component 122 are flexible, allowing for foldable and deformable installation. This ensures the continuity and integrity of the first fireproof insulation component 115 and the second fireproof insulation component 122, preventing discontinuities in the fireproof insulation components and thus avoiding excessive thermal bridges, thereby improving the thermal insulation and fireproof performance of the energy storage container 100. Furthermore, the top cover assembly 120 is detachably connected to the top of the container body 110. Therefore, during the final assembly of the energy storage container 100, the top cover assembly 120 can be installed after all internal processes of the container body 110 are completed, simplifying the installation process and improving installation efficiency. After the top cover assembly 120 is installed, the first fireproof insulation component 115 can abut against the outer periphery of the second fireproof insulation component 122 along the circumference of the top opening 116, ensuring the continuous and uninterrupted flow of the fireproof insulation material, thereby meeting the thermal insulation and fireproof requirements of the energy storage container 100.
[0036] like Figure 3 As shown, the top cover assembly 120 also includes at least two reinforcing members 123 to improve the strength of the top cover assembly 120. The at least two reinforcing members 123 are disposed at the bottom of the top plate 121 along the width or length direction of the top cover assembly 120 and are connected to the top plate 121. The at least two reinforcing members 123 are arranged parallel and spaced apart. When there are multiple reinforcing members 123, preferably, the at least two reinforcing members 123 are arranged at equal intervals. The top of the reinforcing member 123 abuts against the lower surface of the top plate 121, and the first fireproof and heat-insulating member 115 covers the side and bottom surfaces of the reinforcing member 123. In this embodiment, the reinforcing member 123 has a U-shaped cross-section, and its two free ends are connected to the bottom of the top plate 121.
[0037] like Figure 1 and Figure 2 As shown, the enclosure 110 includes a pair of top side beams 111, a pair of top cross beams 112, and a pair of end caps 149. The pair of top side beams 111 are located on both sides of the top of the enclosure 110 and are parallel to each other. The pair of top cross beams 112 are located at both ends of the top of the enclosure 110 and are parallel to each other. The two ends of the top cross beams 112 are respectively connected to the pair of top side beams 111, and the top cross beams 112 are perpendicular to the top side beams 111. The end caps 149 are disposed on top of the top cross beams 112 along the length direction of the top cross beams 112 and extend toward the inner side of the enclosure 110 (see [reference]). Figure 7 and Figure 8 ).like Figure 2 As shown, the pair of top side beams 111 and the pair of end lintels 149 form a top opening 116 around each other, and a first fireproof and heat-insulating member 115 is provided at least on the top of the pair of top side beams 111 and the pair of end lintels 149. Specifically, the first fireproof and heat-insulating member 115 at least covers the upper surface of the pair of top side beams 111 and the pair of end lintels 149, and a layer of the first fireproof and heat-insulating member 115 is provided on the upper surface of the pair of top side beams 111 and the pair of end lintels 149.
[0038] like Figures 4 to 8 As shown, the outer peripheral edge of the top plate 121 is detachably connected to the pair of top side beams 111 and the pair of end caps 149 by fasteners 130. Specifically, the outer peripheral edge of the top plate 121 is provided with a plurality of through holes 124. Preferably, the plurality of through holes 124 are arranged at equal intervals. A plurality of nuts 148 are pre-embedded on the top side beams 111 and the end caps 149 respectively. The plurality of nuts 148 on the top side beams 111 are arranged at equal intervals along the length direction of the top side beams 111, and the plurality of nuts 148 on the end caps 149 are arranged at equal intervals along the length direction of the end caps 149. The positions of the nuts 148 correspond to the positions of the through holes 124. Fastener 130 can extend through through hole 124 on top plate 121 and connect to nut 148 on top side beam 111 or nut 148 on end cap 149, thereby detachably connecting top cover assembly 120 to housing 110.
[0039] like Figure 3 and Figure 4As shown, the energy storage container 100 also includes a waterproof sealing strip 150. The waterproof sealing strip 150 is disposed around the top opening 116 at the connection point between the top plate 121 and the pair of top side beams 111 and the pair of end caps 149, ensuring that the connection point is waterproof and preventing rainwater from entering the interior of the energy storage container 100. The waterproof sealing strip 150 can be attached (e.g., bonded) to the lower surface of the top plate 121 along its outer peripheral edge. The waterproof sealing strip 150 can also be attached (e.g., bonded) to the upper surface of the top side beams 111 along their length and to the upper surface of the end caps 149 along their length.
[0040] like Figures 4 to 8 As shown, the container 110 also includes a side water-retaining member 119 and an end water-retaining member 143. The side water-retaining member 119 is disposed on top of the top side beam 111 along its length and abuts against the outer end face of the first fireproof and heat-insulating member 115, thereby preventing rainwater from entering the interior of the energy storage container 100 through the gap between the first fireproof and heat-insulating member 115 and the upper surface of the top side beam 111. The end water-retaining member 143 is disposed on top of the end cap plate 149 along the length of the top crossbeam 112 and abuts against the outer end face of the first fireproof and heat-insulating member 115, thereby preventing rainwater from entering the interior of the energy storage container 100 through the gap between the first fireproof and heat-insulating member 115 and the upper surface of the end cap plate 149. In this embodiment, both the side water-retaining member 119 and the end water-retaining member 143 have an L-shaped cross-section. In other embodiments not shown, the side water-blocking member 119 and the end water-blocking member 143 can be made of square tubes, angle steel, round steel, or other profiles.
[0041] like Figure 5 and Figure 6 As shown, the side baffle 119 includes a first lateral extension 144 and a first vertical extension 145 connected to the first lateral extension 144. The first lateral extension 144 extends laterally, the first vertical extension 145 extends vertically, and the bottom end of the first vertical extension 145 is connected to the outer end of the first lateral extension 144. The first lateral extension 144 is sandwiched between the lower surface of the first fireproof and heat-insulating member 115 and the upper surface of the top side beam 111, and the first vertical extension 145 abuts against the outer end face of the first fireproof and heat-insulating member 115.
[0042] like Figure 7 and Figure 8As shown, the end baffle 143 includes a second lateral extension 146 and a second vertical extension 147 connected to the second lateral extension 146. The second lateral extension 146 extends laterally, the second vertical extension 147 extends vertically, and the bottom end of the second vertical extension 147 is connected to the outer end of the second lateral extension 146. The second lateral extension 146 is sandwiched between the lower surface of the first fireproof and heat-insulating member 115 and the upper surface of the end cap 149, and the second vertical extension 147 abuts against the outer end face of the second fireproof and heat-insulating member 122.
[0043] like Figure 5 As shown, the container 110 also includes a side wall panel 113, which is disposed on the side of the container 110 and below the top side beam 111. A first fireproof and heat-insulating component 115 covers the inner surface of the side wall panel 113, the lower surface of the top side beam 111, and the inner side surface of the top side beam 111. This ensures the continuity and integrity of the first fireproof and heat-insulating component 115 on the side of the container 110, avoiding excessive thermal bridges caused by discontinuities in the first fireproof and heat-insulating component 115, thereby improving the thermal insulation and fire resistance performance of the energy storage container 100. The inner surface of the side wall panel 113, the lower surface of the top side beam 111, and the inner side surface of the top side beam 111 are covered with two layers of the first fireproof and heat-insulating component 115 to further improve the fireproof and heat-insulating performance of the container 110.
[0044] like Figure 6 As shown, the enclosure 110 also includes a side fireproof door frame 117 and a side fireproof door panel 118. The side fireproof door frame 117 and the side fireproof door panel 118 are located on the side of the enclosure 110. The side fireproof door frame 117 is located below the top side beam 111, and the side fireproof door panel 118 is pivotally connected to the side fireproof door frame 117. Both the side fireproof door frame 117 and the side fireproof door panel 118 are made of fire-resistant material. The side fireproof door frame 117 can be constructed in a U-shape or a square shape, and the side fireproof door panel 118 is located on the inner side of the side fireproof door frame 117.
[0045] In this embodiment, the first fireproof and heat-insulating component 115 covers at least the inner surface of the side fireproof door frame 117, the upper surface of the side fireproof door frame 117, and the inner surface of the top side beam 111. This ensures the continuity and integrity of the first fireproof and heat-insulating component 115 on the side of the container 110, preventing discontinuities in the first fireproof and heat-insulating component 115 that could form excessive thermal bridges, thereby improving the thermal insulation and fireproof performance of the energy storage container 100. In an embodiment not shown, the first fireproof and heat-insulating component 115 may cover the upper surface of the side fireproof door frame 117 and the inner surface of the top side beam 111.
[0046] like Figure 2As shown, in this embodiment, only a side wall panel 113 is provided on one side of the enclosure 110, while two side fire doors and a small side wall panel 113 are provided on the other side of the enclosure 110. It is understood that the location and number of the side wall panels 113 and side fire door panels 118 are not limited to this embodiment. Depending on the needs, side fire doors can be provided on both sides of the enclosure 110.
[0047] like Figure 7 As shown, the container 110 also includes an end wall plate 114. The end wall plate 114 is disposed at the end of the container 110 and below the top crossbeam 112. A first fireproof and heat-insulating component 115 covers the inner surface of the end wall plate 114, the lower surface of the top crossbeam 112, the inner side surface of the top crossbeam 112, and the lower surface of the end lintel 149. This ensures the continuity and integrity of the first fireproof and heat-insulating component 115 at the end of the container 110, avoids excessive thermal bridges caused by discontinuity of the first fireproof and heat-insulating component 115, and thus improves the thermal insulation and fireproof performance of the energy storage container 100.
[0048] like Figure 8 As shown, the container body 110 also includes an end door frame 141 and an end door panel 142. The end door frame 141 and end door panel 142 are located at the ends of the container body 110. The end door frame 141 is located below the top crossbeam 112, and the end door panel 142 is pivotally connected to the end door frame 141. The end door panel 142 and end door frame 141 can be made of conventional container door materials or fire-resistant materials. The end door frame 141 can be constructed in a U-shape or a square shape, and the end door panel 142 is located inside the end door frame 141.
[0049] In this embodiment, the first fireproof and heat-insulating component 115 covers at least the top surface of the end door frame 141, the inner side of the top crossbeam 112, and the lower surface of the end lintel 149. This ensures the continuity and integrity of the first fireproof and heat-insulating component 115 at the end of the container 110, avoids excessive thermal bridges caused by discontinuity of the first fireproof and heat-insulating component 115, and thus improves the heat insulation and fireproof performance of the energy storage container 100.
[0050] The energy storage container 100 also includes a third fireproof and heat-insulating component (not shown). This third fireproof and heat-insulating component covers the inner surfaces of the first fireproof and heat-insulating component 115 and the second fireproof and heat-insulating component 122. The third fireproof and heat-insulating component is made of a different material than the first fireproof and heat-insulating component 115 and the second fireproof and heat-insulating component 122, and is flexible. The thickness of the third fireproof and heat-insulating component is less than the thickness of the first fireproof and heat-insulating component 115 and the second fireproof and heat-insulating component 122. Preferably, the third fireproof and heat-insulating component is aluminum foil cloth, serving a moisture-proof and heat-insulating function.
[0051] 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 this application.
[0052] The features described in one embodiment herein may be applied, alone or in combination with other features, to another embodiment, unless the feature is not applicable in that other embodiment or otherwise stated.
[0053] This application 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 this application to the described embodiments. Furthermore, those skilled in the art will understand that this application is not limited to the above embodiments, and many more variations and modifications can be made based on the teachings of this application, all of which fall within the scope of protection claimed in this application.
Claims
1. An energy storage container, characterized in that, include: The enclosure includes a first fireproof and heat-insulating component and a top opening, wherein the first fireproof and heat-insulating component is disposed at least around the top opening on the top of the enclosure; A top cover assembly, detachably connected to the top of the enclosure and movable between a closed position covering the top opening and an open position removed from the enclosure, the top cover assembly including a top plate and a second fireproof insulation member, the outer peripheral edge of the top plate being detachably connected to the top of the enclosure, and the second fireproof insulation member covering the bottom of the top plate. The first fireproof and heat-insulating component and the second fireproof and heat-insulating component are flexible. When the top cover assembly is in the closed position, the first fireproof and heat-insulating component can abut against the outer peripheral edge of the second fireproof and heat-insulating component along the circumference of the top opening.
2. The energy storage container according to claim 1, characterized in that, The top cover assembly further includes at least two reinforcing members, which are disposed at the bottom of the top plate along the width or length direction of the top cover assembly and connected to the top plate. The at least two reinforcing members are disposed in parallel and spaced apart, and the first fireproof and heat-insulating member covers the side and bottom surfaces of the reinforcing members.
3. The energy storage container according to claim 1, characterized in that, The enclosure includes a pair of top side beams, a pair of top cross beams, and a pair of end lintels. The pair of top side beams are located on the top sides of the enclosure, and the pair of top cross beams are located at the top ends of the enclosure. The two ends of the top cross beams are respectively connected to the pair of top side beams. The end lintels are disposed on the top of the top cross beams along the length direction of the top cross beams and extend toward the inside of the enclosure. The pair of top side beams and the pair of end lintels surround to form the top opening. The first fireproof and heat-insulating component is disposed at least on the top of the pair of top side beams and the pair of end lintels.
4. The energy storage container according to claim 3, characterized in that, The outer periphery of the top plate is detachably connected to the pair of top side beams and the pair of end lintels by fasteners. The energy storage container also includes waterproof strips, which are disposed around the top opening at the connection points between the top plate and the pair of top side beams and the pair of end lintels.
5. The energy storage container according to claim 3, characterized in that, The enclosure also includes a side water baffle and an end water baffle. The side water baffle is disposed on the top of the top side beam along the length direction of the top side beam and abuts against the outer end face of the first fireproof and heat-insulating component. The end water baffle is disposed on the top of the end lintel along the length direction of the top crossbeam and abuts against the outer end face of the first fireproof and heat-insulating component.
6. The energy storage container according to claim 3, characterized in that, The enclosure also includes a side wall panel, which is disposed on the side of the enclosure and below the top side beam. The first fireproof and heat-insulating component covers the inner surface of the side wall panel, the lower surface of the top side beam, and the inner side surface of the top side beam.
7. The energy storage container according to claim 3, characterized in that, The enclosure also includes a side fireproof door frame and a side fireproof door panel, which are disposed on the side of the enclosure. The side fireproof door frame is disposed below the top side beam, and the side fireproof door panel is pivotally connected to the side fireproof door frame. The first fireproof and heat-insulating component covers at least the inner surface of the side fireproof door frame, the upper surface of the side fireproof door frame, and the inner side of the top side beam.
8. The energy storage container according to claim 3, characterized in that, The enclosure also includes an end wall panel, which is disposed at the end of the enclosure and below the top crossbeam. The first fireproof and heat-insulating component covers the inner surface of the end wall panel, the lower surface of the top crossbeam, the inner surface of the top crossbeam, and the lower surface of the end lintel.
9. The energy storage container according to claim 3, characterized in that, The enclosure also includes an end door frame and an end door panel, which are disposed at the ends of the enclosure. The end door frame is disposed below the top crossbeam, and the end door panel is pivotally connected to the end door frame. The first fireproof and heat-insulating component covers at least the top surface of the end door frame, the inner side of the top crossbeam, and the lower surface of the end lintel.
10. The energy storage container according to any one of claims 1 to 9, characterized in that, The energy storage container also includes a third fireproof and heat-insulating component, which covers the inner surfaces of the first and second fireproof and heat-insulating components. The third fireproof and heat-insulating component is made of a different material than the first and second fireproof and heat-insulating components and is flexible.
11. The energy storage container according to claim 10, characterized in that, The thickness of the third fireproof and heat-insulating component is less than the thickness of the first fireproof and heat-insulating component and the second fireproof and heat-insulating component. The first fireproof and heat-insulating component and the second fireproof and heat-insulating component are one of fireproof fiber blanket and fireproof heat-insulating blanket. The third fireproof and heat-insulating component is aluminum foil cloth.