Energy storage container

By setting up anti-collision parts on the energy storage container and equipped with a guide part, the problem of interference with external components during the transfer of the energy storage container is solved, and higher movement convenience and reliability are achieved.

WO2025161686A1PCT designated stage Publication Date: 2025-08-07CONTEMPORARY AMPEREX TECHNOLOGY CO LTD
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Patent Information

Application Number
PCT/CN2024/137212
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-01-31
Filing Date
2024-12-05
Publication Date
2025-08-07

AI Technical Summary

Technical Problem

Energy storage containers are prone to interfere with external components during the transfer process, resulting in increased movement difficulty.

Method used

A collision avoidance member is provided on the energy storage container, and a guide part is provided on the collision avoidance member. The guide part guides the energy storage container away from the external parts to reduce the risk of interference.

Benefits of technology

Reduces the risk of energy storage containers being damaged by impact during movement, and improves the convenience and reliability of transfer.

✦ Generated by Eureka AI based on patent content.

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Abstract

Embodiments of the present application provide an energy storage container. The energy storage container comprises a container body and anti-collision members. The anti-collision members are arranged on the container body. Each anti-collision member comprises a guide portion. The anti-collision members are arranged on the container body, improving the anti-collision performance of the container body, and reducing the risk of damage to the energy storage container due to collisions during movement. The anti-collision members are each provided with a guide portion, and by providing the guide portions, the guide portions can guide the energy storage container to move, reducing the transfer difficulty of the energy storage container.
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Description

Energy storage container CROSS-REFERENCE TO RELATED APPLICATIONS

[0001] This application claims priority to Chinese patent application No. 202420241876.4, filed on January 31, 2024, entitled “Energy Storage Container,” the entire contents of which are incorporated herein by reference. Technical Field

[0002] The present application relates to the field of energy storage technology, and in particular to an energy storage container. Background Art

[0003] Energy storage containers are energy storage devices for storing and transferring electric energy. They are easy to install and transport, highly integrated, occupy a small area, and have good scalability. They are an essential component of the development of distributed energy, smart grids, and energy internet in energy storage systems.

[0004] During the transfer of the energy storage container, the devices on the energy storage container are prone to interfere with external components, affecting the normal movement of the energy storage container and increasing the difficulty of transferring the energy storage container. Summary of the Invention

[0005] An embodiment of the present application provides an energy storage container, which can effectively reduce the difficulty of transferring the energy storage container.

[0006] An embodiment of the present application provides an energy storage container, comprising a container, a battery, and an anti-collision member. The container has a housing, the battery is accommodated in the housing, and the anti-collision member is disposed within the container. The anti-collision member includes a guide portion.

[0007] In the above technical solution, by providing anti-collision members on the container body, the anti-collision performance of the container body is improved, reducing the risk of damage to the energy storage container due to impact during movement. The anti-collision members are provided with guides that can guide the movement of the energy storage container, thereby reducing the difficulty of transferring the energy storage container.

[0008] In some embodiments, the guide portion is configured to guide the energy storage container away from the external component when the guide portion contacts the external component during movement of the energy storage container. As the container moves, causing the anti-collision member of the energy storage container to approach the external component, the guide portion of the anti-collision member can contact the external component, buffering the contact between the container and the external component. As the container continues to move, the guide portion can guide the container away from the external component, thereby reducing the difficulty of transferring the energy storage container.

[0009] In some embodiments, an anti-collision member is disposed on at least one side of the container along a first direction, and a guide portion is configured to guide the energy storage container away from the external component along the first direction when the energy storage container moves along a second direction and the guide portion contacts the external component, where the first direction intersects the second direction. By disposing the anti-collision member on at least one side of the container along the first direction, the anti-collision member can contact the external component disposed along the first direction, reducing the risk of damage to the container due to direct contact with the external component. When the energy storage container moves along the second direction, the guide portion of the anti-collision member can contact the external component and guide the container away from the external component along the first direction, thereby facilitating continued movement of the energy storage container in the second direction, reducing the risk of external components obstructing the anti-collision member and preventing the energy storage container from continuing to move in the second direction, and reducing the difficulty of transferring the energy storage container.

[0010] In some embodiments, the anti-collision member is disposed on at least one side of the housing along a first direction. The guide portion includes an inclined surface intersecting the first direction. By providing the inclined surface intersecting the first direction, when the external component contacts the inclined surface, the inclined surface can guide the housing away from the external component along the first direction as the housing moves relative to the external component. The inclined surface is easy to manufacture and has low processing costs.

[0011] In some embodiments, the anti-collision member has a first end surface, which is located at an end of the anti-collision member facing away from the housing along a first direction, and the inclined surface is connected to the first end surface. By positioning the inclined surface toward the first end surface facing away from the housing, when the inclined surface contacts an external component, the inclined surface guides the external component toward the first end surface, allowing the external component to directly disengage from the anti-collision member at the first end surface. After contacting the inclined surface, the external component disengages from the anti-collision member, resulting in a simpler structure and improved material utilization.

[0012] In some embodiments, inclined surfaces are connected to both sides of the first end surface along the second direction, where the second direction intersects the first direction. By providing inclined surfaces on both sides of the anti-collision member along the second direction, the energy storage container has corresponding inclined surfaces that can contact external components during reciprocating movement in the second direction, thereby guiding the container away from external components and reducing the problem of the anti-collision member having only a single inclined surface, which limits its installation position on the container.

[0013] In some embodiments, the anti-collision component includes a first wall portion, a second wall portion, a third wall portion, a fourth wall portion, and a fifth wall portion connected in sequence, the first wall portion and the fifth wall portion are arranged relative to each other along the second direction, along the first direction, the third wall portion is farther away from the box body than the first wall portion and the fifth wall portion, the surface of the third wall portion facing away from the box body is a first end face, and the surface of the second wall portion facing away from the fourth wall portion and the surface of the fourth wall portion facing away from the second wall portion are both inclined surfaces. By arranging the first wall portion and the fifth wall portion relative to each other and arranging the third wall portion farther away from the box body than the first wall portion and the fifth wall portion, it is beneficial to maintain a sufficient distance on the side of the second wall portion and the fourth wall portion away from the third wall portion so that a larger first end face can be arranged, reducing the risk of damaging external components due to the first end face being too small, and at the same time, an inclined surface intersecting the first direction can be arranged on the second wall portion and the fourth wall portion. When the size of the first end face is determined, the inclination angle of the inclined surface with respect to the first direction can be adjusted by adjusting the distance between the first wall portion and the fifth wall portion, so that the guide portion can guide the movement of the box body.

[0014] In some embodiments, the box body is provided with a mounting base, and the first wall portion, the second wall portion, the third wall portion, the fourth wall portion, and the fifth wall portion are all connected to the mounting base. By arranging the anti-collision member on the box body via the mounting base, and the first wall portion, the second wall portion, the third wall portion, the fourth wall portion, and the fifth wall portion are all connected to the mounting base, the structure of the first wall portion, the second wall portion, the third wall portion, the fourth wall portion, and the fifth wall portion can be made more stable.

[0015] In some embodiments, the first wall portion, the second wall portion, the third wall portion, the fourth wall portion, and the fifth wall portion collectively define a receiving space. The mounting base includes at least one mounting plate, which is received within the receiving space. By disposing the mounting plate within the receiving space, the structural strength of the receiving space is enhanced, allowing the anti-collision member to withstand greater forces and maintain its structure when the anti-collision member contacts an external component.

[0016] In some embodiments, the mounting base includes multiple mounting plates, which are spaced apart along the third direction within the accommodation space. The first direction, the second direction, and the third direction are not coplanar and intersect with each other. By providing multiple mounting plates, the structure of the anti-collision member is more stable and has higher strength.

[0017] In some embodiments, the anti-collision member is formed by bending a plate to form a first wall portion, a second wall portion, a third wall portion, a fourth wall portion, and a fifth wall portion. Forming the first wall portion, the second wall portion, the third wall portion, the fourth wall portion, and the fifth wall portion by bending the plate facilitates the processing and manufacturing of the anti-collision member, reduces processing costs, and maintains the connection strength of the anti-collision member at the bend.

[0018] In some embodiments, the anti-collision member includes an elastic block, and the first end surface is a surface of the elastic block facing away from the container. By using the elastic block as the anti-collision member, when an external component contacts the anti-collision member, the anti-collision member can deform to reduce the risk of damage to the anti-collision member. The first end surface is provided with inclined surfaces on both sides along the second direction, so that when the anti-collision member moves in the second direction, the inclined surfaces on both sides of the first end surface can contact the external component to guide the energy storage container away from the external component.

[0019] In some embodiments, the box body is provided with a mounting seat, and the elastic block is detachably connected to the mounting seat. The elastic block is detachably connected to the box body through the mounting seat, which facilitates the replacement of the elastic block.

[0020] In some embodiments, an anti-collision member is disposed on at least one side of the container along a first direction. The guide portion includes an arcuate surface, the centerline of which extends along a third direction, intersecting the first direction and the third direction. The arcuate surface allows the energy storage container to be guided away from the external component when the external component abuts the arcuate surface along a non-tangential direction, thereby providing a more effective guidance effect.

[0021] In some embodiments, the anti-collision member includes a columnar body, the axis of the columnar body extending along a third direction, and the columnar body having an outer peripheral surface disposed about the axis, at least a portion of which is an arcuate surface. By configuring a portion or the entire outer peripheral surface of the columnar body as an arcuate surface, the time required to adjust the setting angle of the anti-collision member during column installation is reduced, making installation of the anti-collision member more convenient.

[0022] In some embodiments, the housing is provided with a mounting seat, and the column is rotatably mounted on the mounting seat about an axis. The column is rotatably mounted on the mounting seat. When an external component contacts the column, the column can rotate to reduce the risk of damage due to friction between the external component and the column. Furthermore, the entire outer circumference of the column can be used as an arc surface, thereby increasing the usable area of ​​the guide portion.

[0023] In some embodiments, the mounting base includes two mounting plates, one on each side of the column along the third direction. The column is rotatably connected to the two mounting plates via a connecting shaft. Providing mounting plates on either side of the column along the third direction improves the stability of the column and facilitates its rotation on the housing.

[0024] In some embodiments, the container includes a crossbeam. The container has a first side and a second side facing each other along its width. The crossbeam is disposed on the first side and / or the second side, extending along the length of the container. The crossbeam is provided with an anti-collision member. The length, width, and height of the container are perpendicular to each other, and the first direction is parallel to the width of the container. The presence of the crossbeam on the first side and / or the second side of the container helps enhance the structural strength of the container. When the guide portion of the anti-collision member contacts an external component, the guide portion applies lateral pressure to the crossbeam, which then transmits the force to the container, causing the container to move along its width away from the external component, thereby reducing the risk of the anti-collision member interfering with the movement of the energy storage container.

[0025] In some embodiments, a crossbeam is provided at the top and / or bottom of the first side along the height direction of the box body; and / or a crossbeam is provided at the top and / or bottom of the second side along the height direction of the box body. When a crossbeam is provided at the bottom of the first side or the bottom of the second side of the box body, an anti-collision member is provided on the crossbeam. When the box body falls and moves toward the external component, the anti-collision member can first contact the external component, and the guide portion guides the box body away from the external component, thereby reducing the risk of the anti-collision member interfering with the movement of the energy storage container; when a crossbeam is provided at the top of the first side or the top of the second side of the box body, an anti-collision member is provided on the crossbeam. When the external component falls and moves toward the box body, the external component can first contact the anti-collision member, and the guide portion of the anti-collision member guides the external component away from the box body, thereby reducing the risk of the anti-collision member interfering with the movement of the energy storage container. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following is a brief introduction to the drawings required for use in the embodiments of the present application. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on the drawings without creative work.

[0027] FIG1 is a cross-sectional view of an energy storage container provided in some embodiments of the present application;

[0028] FIG2 is a schematic structural diagram of an energy storage container provided in some embodiments of the present application;

[0029] FIG3 is a partial enlarged view of area A in FIG2 ;

[0030] FIG4 is a schematic structural diagram of an anti-collision component provided in some embodiments of the present application;

[0031] FIG5 is an exploded view of an anti-collision member and a mounting seat provided in some embodiments of the present application;

[0032] FIG6 is a side view of an anti-collision member provided in some embodiments of the present application;

[0033] FIG7 is a front view of an anti-collision member provided in some embodiments of the present application;

[0034] FIG8 is a schematic structural diagram of an anti-collision member provided in some other embodiments of the present application;

[0035] FIG9 is an exploded view of an anti-collision member and a mounting seat provided in some other embodiments of the present application;

[0036] FIG10 is a schematic structural diagram of an anti-collision member provided in some other embodiments of the present application;

[0037] FIG11 is an exploded view of an anti-collision member and a mounting seat provided in some other embodiments of the present application;

[0038] FIG12 is a side view of an anti-collision member and a mounting seat provided in some embodiments of the present application;

[0039] FIG13 is a schematic structural diagram of an energy storage container provided in yet other embodiments of the present application;

[0040] FIG14 is a partial enlarged view of area B in FIG13 ;

[0041] In the drawings, the drawings are not drawn to scale.

[0042] Marking instructions: 1-first wall; 2-second wall; 3-third wall; 4-fourth wall; 5-fifth wall; 6-elastic block; 6a-through hole; 7-connecting shaft; 71-latch pin; 72-cotter pin; 1a-guide portion; 1b-inclined surface; 1c-arc surface; 2a-first end face; 10a-accommodating space; 101-column; 1011-outer peripheral surface; 101a-axis line; 10-anti-collision part; 20-box body; 201-box door; 30-partitioning part; 30a-accommodating space; 40-battery; 50-mounting seat; 60-crossbeam; 50a-screw hole; 50b-bolt; 501-mounting plate; 100-energy storage container; 100a-first side; 100b-second side; X-first direction; Y-second direction; Z-third direction. DETAILED DESCRIPTION

[0043] The following detailed description of the embodiments of the present application is provided in conjunction with the accompanying drawings and examples. The following detailed description of the embodiments and the accompanying drawings are used to illustrate the principles of the present application, but are not intended to limit the scope of the present application, that is, the present application is not limited to the described embodiments.

[0044] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the art to which this application belongs; the terms used herein are only for the purpose of describing specific embodiments and are not intended to limit this application; the terms "including" and "having" and any variations thereof in the specification and claims of this application and the above-mentioned figure descriptions are intended to cover non-exclusive inclusions.

[0045] In the description of the embodiments of the present application, technical terms such as "first" and "second" are only used to distinguish different objects and cannot be understood as indicating or implying relative importance or implicitly indicating the number, specific order or primary and secondary relationship of the indicated technical features.

[0046] References herein to "embodiments" mean that a particular feature, structure, or characteristic described in connection with the embodiments may be included in at least one embodiment of the present application. The appearance of this phrase in various places in the specification does not necessarily refer to the same embodiment, nor does it constitute an independent or alternative embodiment that is mutually exclusive of other embodiments. It is understood, both explicitly and implicitly, by those skilled in the art that the embodiments described herein may be combined with other embodiments.

[0047] In the description of the embodiments of the present application, the term "multiple" refers to more than two (including two). Similarly, "multiple groups" refers to more than two groups (including two groups), and "multiple pieces" refers to more than two pieces (including two pieces), unless otherwise clearly and specifically defined.

[0048] In the description of the embodiments of the present application, unless otherwise expressly specified or limited, technical terms such as "installed," "connected," "connected," and "fixed" should be understood in a broad sense. For example, they can refer to fixed connections, detachable connections, or integration; mechanical connections or electrical connections; direct connections or indirect connections through an intermediate medium; internal connections between two components or interactions between two components. Those skilled in the art can understand the specific meanings of the above terms in the embodiments of the present application based on specific circumstances.

[0049] The term "multiple" in this application refers to more than two (including two). Similarly, "multiple groups" refers to more than two groups (including two groups), and "multiple pieces" refers to more than two pieces (including two pieces).

[0050] In the embodiment of the present application, the energy storage container is an energy storage device with a relatively high degree of integration.

[0051] As an example, an energy storage container may include a battery compartment, in which multiple batteries, main control components, convergence components and other components may be arranged.

[0052] A battery can also be referred to as an electrical box, which includes a box body and one or more battery cells enclosed by the box body. For example, battery cells can include lithium secondary batteries, lithium ion primary batteries, lithium-sulfur batteries, sodium lithium ion batteries, sodium ion batteries, or magnesium ion batteries, etc., which are not limited in the present embodiment. Battery cells can be cylindrical, flat, rectangular, or other shapes, which are not limited in the present embodiment.

[0053] As an example, the multiple batteries arranged in the battery compartment can be connected in series, in parallel, or in series and parallel. In some embodiments, the multiple batteries can be connected to the main control component via a busbar component, and the main control component can realize electrical connection between the multiple batteries.

[0054] In the application of energy storage containers, many design factors of the energy storage containers need to be considered, such as the heat resistance, storage capacity, load stability, etc. of the energy storage containers. In addition, the reliability of the energy storage containers also needs to be considered.

[0055] In order to improve the reliability of the energy storage container, anti-collision parts can be added to the outside of the energy storage container. When the energy storage container collides with external components, the anti-collision parts can cushion the collision between the energy storage container and the external components, thereby reducing the damage to the energy storage container caused by the collision with the external components.

[0056] In general energy storage containers, anti-collision parts are set on the outside of the energy storage container to cushion the impact between the energy storage container and external components. Due to the setting of the anti-collision parts, the anti-collision parts are likely to interfere with the external components during the transfer of the energy storage container, which makes it impossible to put the energy storage container in place, increasing the difficulty of transferring the energy storage container. For example, during the process of lifting the energy storage container, the energy storage container needs to be placed to the side of the external components (other energy storage containers) so that the energy storage containers are placed neatly. When the energy storage container is placed from top to bottom, the anti-collision parts on both sides of the energy storage container are likely to overlap with the external components, causing the external components to interfere with the normal movement of the energy storage container.

[0057] In view of this, an embodiment of the present application provides an energy storage container. By providing an anti-collision member on the energy storage container and a guide portion on the anti-collision member, when the guide portion of the anti-collision member contacts an external component, the guide portion can guide the energy storage container away from the external component, thereby reducing the risk of external components interfering with the normal movement of the energy storage container and improving the reliability of the energy storage container.

[0058] Please refer to Figure 1, which is a cross-sectional view of an energy storage container 100 provided in some embodiments of the present application. The energy storage container 100 includes a housing 20, a partition 30, and a battery 40. The housing 20 has a receiving cavity. The partition 30 is disposed within the housing 20 and divides the receiving cavity into a plurality of receiving spaces 10a. The batteries 40 are disposed in the receiving spaces 10a.

[0059] The separator 30 may be an insulating plate, an insulating net, etc.; the material of the separator 30 may be polytetrafluoroethylene, ceramic, rubber, etc.

[0060] The battery 40 refers to a single physical module comprising one or more battery cells 40 to provide higher voltage and capacity. The battery cells 40 include, but are not limited to, lithium-ion batteries 40, sodium-ion batteries 40, sodium-lithium-ion batteries 40, lithium metal batteries 40, sodium metal batteries 40, lithium-sulfur batteries 40, magnesium-ion batteries 40, nickel-metal hydride batteries 40, nickel-cadmium batteries 40, and lead-acid batteries 40.

[0061] In some embodiments, please refer to Figures 2 and 3. Figure 2 is a schematic diagram of the structure of an energy storage container 100 provided in some embodiments of the present application, and Figure 3 is a partial enlarged view of area A in Figure 2. The energy storage container 100 includes a housing 20, a battery 40, and an anti-collision member 10. The housing 20 has a receiving cavity, in which the battery 40 is accommodated, and the anti-collision member 10 is disposed within the housing 20. The anti-collision member 10 includes a guide portion 1a.

[0062] Referring to Figure 2 , the container 20 may be provided with a door 201 for easy loading and unloading. The container 20 may be a hollow structure with one end open, or it may be a hollow structure with multiple surfaces open, with the door 201 provided at each opening. The energy storage container 100 may be a standard container 20 that complies with the national standard (GB1413-2008) or a non-national standard container 20 that does not comply with the national standard.

[0063] The anti-collision member 10 may be in a block structure, a columnar structure, a strip structure, etc. The anti-collision member 10 is disposed on the box body 20. The anti-collision member 10 and the box body 20 may be directly connected, for example, by welding the anti-collision member 10 and the box body 20 or by snapping the anti-collision member 10 and the box body 20; the anti-collision member 10 and the box body 20 may be indirectly connected, for example, by riveting the anti-collision member 10 and the box body 20 together, which may be a rivet; or the anti-collision member 10 and the box body 20 may be bonded together by adhesive.

[0064] The number of anti-collision members 10 may be one or more. The anti-collision member 10 may be provided in any one of the length direction, width direction, or height direction of the box body 20, or in any two of the length direction, width direction, or height direction of the box body 20, or in all of the length direction, width direction, and height direction of the box body 20. When the anti-collision member 10 is provided in the length direction of the box body 20, the anti-collision member 10 may be provided on one side of the box body 20 along the length direction of the box body 20, or the anti-collision member 10 may be provided on both sides of the box body 20 along the length direction of the box body 20; when the anti-collision member 10 is provided in the width direction of the box body 20, the anti-collision member 10 may be provided on one side of the box body 20 along the width direction of the box body 20, or the anti-collision member 10 may be provided on both sides of the box body 20 along the width direction of the box body 20; when the anti-collision member 10 is provided in the height direction of the box body 20, the anti-collision member 10 may be provided on one side of the box body 20 along the height direction of the box body 20, or the anti-collision member 10 may be provided on both sides of the box body 20 along the height direction of the box body 20. It is understandable that when the anti-collision member 10 is provided on one side of the box body 20, the number of anti-collision members 10 on that side of the box body 20 may be one or more.

[0065] The anti-collision member 10 may be provided on the outer surface of the box body 20 , or a portion of the anti-collision member 10 may be embedded in the box wall of the box body 20 , with the other portion of the anti-collision member 10 extending out of the box body 20 .

[0066] The guide portion 1a is used to guide the movement of the box body 20. The guide portion 1a can be a surface on the anti-collision member 10. For example, at least a portion of the outer surface of the anti-collision member 10 is the guide portion 1a. It can be understood that the guide portion 1a can be a plane or a curved surface. The guide portion 1a can also be a component on the anti-collision member 10. For example, the guide portion 1a is a wedge block. The wedge block is arranged on the side of the anti-collision member 10 away from the box body 20. When the wedge block contacts the external component (not shown in the figure), the wedge block can guide the box body 20 to move away from the external component. The guide portion 1a can also guide the external component to avoid the box body 20. For example, when the external component moves to contact the guide portion 1a of the box body 20, the guide portion 1a can guide the external component away from the box body 20, thereby facilitating the external component to continue to move and reducing the difficulty of transferring the external component.

[0067] In the aforementioned energy storage container 100, the anti-collision member 10 provided on the container body 20 improves the anti-collision performance of the container body 20 and reduces the risk of damage to the container body 20 due to impact during movement. The anti-collision member 10 is provided with a guide portion 1a. By providing the guide portion 1a, the guide portion 1a can guide the movement of the energy storage container 100, thereby reducing the difficulty of transferring the energy storage container 100.

[0068] In some embodiments, the guide portion 1 a is configured to guide the energy storage container 100 away from external components when the energy storage container 100 moves so that the guide portion 1 a contacts the external components.

[0069] As an example, the anti-collision member 10 is provided on at least one side of the box body 20 along the first direction X. When the energy storage container 100 moves along the second direction Y and contacts an external component, the guide portion 1a guides the energy storage container 100 along the first direction X away from the external component. Alternatively, when the energy storage container 100 moves along the first direction X and contacts an external component, the guide portion 1a guides the energy storage container 100 along the second direction Y away from the external component, where the second direction Y intersects the first direction X.

[0070] The external component can be an obstacle during the transfer of the energy storage container 100. For example, during the loading and unloading of the energy storage container 100 on a cargo ship, the external component can be the hull of the cargo ship. The external component can also be the energy storage container 100. For example, when the energy storage containers 100 are stacked, one energy storage container 100 is transferred to the top of other energy storage containers 100 or to one side of other energy storage containers 100. The above-mentioned other energy storage containers 100 are external components.

[0071] The energy storage container 100 may be moved by crane lifting, picked up by a forklift, etc.

[0072] When the box body 20 moves and the anti-collision member 10 of the energy storage container 100 approaches the external component, the guide portion 1a of the anti-collision member 10 can contact the external component, buffering the contact between the box body 20 and the external component. As the box body 20 continues to move, the guide portion 1a can guide the box body 20 away from the external component, thereby reducing the difficulty of transferring the energy storage container 100.

[0073] In some embodiments, the anti-collision member 10 is disposed on at least one side of the box body 20 along the first direction X, and the guide portion 1a is configured to guide the energy storage container 100 along the first direction X away from the external component when the energy storage container 100 moves along the second direction Y so that the guide portion 1a contacts the external component. The first direction X intersects with the second direction Y.

[0074] The anti-collision member 10 is disposed on at least one side of the box body 20 along the first direction X. That is, the anti-collision member 10 is disposed on at least one side of the box body 20 along the first direction X. It is understood that the anti-collision member 10 may be disposed on only one side of the box body 20 along the first direction X, or on both sides of the box body 20 along the first direction X. The number of anti-collision members 10 may be one, with one anti-collision member 10 disposed on one side of the box body 20 along the first direction X; the number of anti-collision members 10 may also be multiple, with multiple anti-collision members 10 disposed on only one side of the box body 20 along the first direction X, or at least one anti-collision member 10 disposed on both sides of the box body 20 along the first direction X.

[0075] The first direction X intersects the second direction Y, and the first direction X and the second direction Y may form an acute angle, an obtuse angle, or a right angle.

[0076] Taking the first direction X and the second direction Y as an example, the first direction X and the second direction Y are perpendicular. Any two of the length direction, height direction, and width direction of the box body 20 may be parallel to the first direction X and the second direction Y, respectively.

[0077] In an embodiment where the width direction of the box body 20 is parallel to the first direction X and the length direction of the box body 20 is parallel to the second direction Y, when the box body 20 moves along the length direction of the box body 20 so that the guide portion 1a contacts the external component, the guide portion 1a guides the box body 20 along the width direction of the box body 20 away from the external component, so that the box body 20 can continue to move along the length direction of the box body 20, reducing the risk of the external component obstructing the anti-collision member 10 and causing the energy storage container 100 to be unable to continue to move along the length direction, thereby reducing the difficulty of transferring the energy storage container 100.

[0078] In an embodiment where the width direction of the box body 20 is parallel to the first direction X and the height direction of the box body 20 is parallel to the second direction Y, when the box body 20 moves along the height direction of the box body 20 so that the guide portion 1a contacts the external component, the guide portion 1a guides the box body 20 along the width direction of the box body 20 away from the external component, so that the box body 20 can continue to move along the height direction of the box body 20, reducing the risk of the external component obstructing the anti-collision member 10 and causing the energy storage container 100 to be unable to continue to move along the height direction, thereby reducing the difficulty of transferring the energy storage container 100.

[0079] In an embodiment where the length direction of the box body 20 is parallel to the first direction X and the width direction of the box body 20 is parallel to the second direction Y, when the box body 20 moves along the width direction of the box body 20 so that the guide portion 1a contacts the external component, the guide portion 1a guides the box body 20 along the length direction of the box body 20 away from the external component, so that the box body 20 can continue to move along the width direction of the box body 20, reducing the risk of the external component obstructing the anti-collision member 10 and causing the energy storage container 100 to be unable to continue to move along the width direction, thereby reducing the difficulty of transferring the energy storage container 100.

[0080] In an embodiment where the length direction of the box body 20 is parallel to the first direction X and the height direction of the box body 20 is parallel to the second direction Y, when the box body 20 moves along the height direction of the box body 20 so that the guide portion 1a contacts the external component, the guide portion 1a guides the box body 20 along the length direction of the box body 20 away from the external component, so that the box body 20 can continue to move along the height direction of the box body 20, reducing the risk of the external component obstructing the anti-collision member 10 and causing the energy storage container 100 to be unable to continue to move along the height direction, thereby reducing the difficulty of transferring the energy storage container 100.

[0081] In an embodiment where the height direction of the box body 20 is parallel to the first direction X and the length direction of the box body 20 is parallel to the second direction Y, when the box body 20 moves along the length direction of the box body 20 so that the guide portion 1a contacts the external component, the guide portion 1a guides the box body 20 along the height direction of the box body 20 away from the external component, so that the box body 20 can continue to move along the length direction of the box body 20, reducing the risk of the external component obstructing the anti-collision member 10 and causing the energy storage container 100 to be unable to continue to move along the length direction, thereby reducing the difficulty of transferring the energy storage container 100.

[0082] In an embodiment where the height direction of the box body 20 is parallel to the first direction X and the length direction of the box body 20 is parallel to the second direction Y, when the box body 20 moves along the width direction of the box body 20 so that the guide portion 1a contacts the external component, the guide portion 1a guides the box body 20 along the height direction of the box body 20 away from the external component, so that the box body 20 can continue to move along the width direction of the box body 20, reducing the risk of the external component obstructing the anti-collision member 10 and causing the energy storage container 100 to be unable to continue to move along the width direction, thereby reducing the difficulty of transferring the energy storage container 100.

[0083] By arranging the anti-collision member 10 on at least one side of the box body 20 along the first direction X, the anti-collision member 10 can contact external components arranged along the first direction X, thereby reducing the risk of damage to the box body 20 caused by direct contact with the external components; when the energy storage container 100 moves along the second direction Y, the guide portion 1a of the anti-collision member 10 can contact the external components, and the guide portion 1a can guide the box body 20 along the first direction X away from the external components, thereby facilitating the energy storage container 100 to continue to move along the second direction Y, reducing the risk of external components obstructing the anti-collision member 10 and causing the energy storage container 100 to be unable to continue to move along the second direction Y, and reducing the difficulty of transferring the energy storage container 100.

[0084] In some embodiments, the anti-collision member 10 is disposed on at least one side of the box body 20 along the first direction X. The guide portion 1a includes an inclined surface 1b intersecting the first direction X.

[0085] The inclined surface 1 b and the first direction X may form an acute angle or an obtuse angle. The first direction X may be the height direction of the box body 20 , the width direction of the box body 20 , or the length direction of the box body 20 .

[0086] There can be one or more inclined surfaces 1b. As an example, the first direction X is the width direction of the box body 20, and the second direction Y is the height direction of the box body 20. Along the second direction Y, inclined surfaces 1b are provided on both sides of the anti-collision component 10.

[0087] By setting the inclined surface 1b intersecting the first direction X, when the external component contacts the inclined surface 1b, as the box body 20 moves relative to the external component, the inclined surface 1b can guide the box body 20 away from the external component along the first direction X. The inclined surface 1b is easy to process and has low processing cost.

[0088] In some embodiments, referring to FIG. 3 , the anti-collision member 10 has a first end surface 2 a . Along the first direction X, the first end surface 2 a is located at an end of the anti-collision member 10 away from the box body 20 , and the inclined surface 1 b is connected to the first end surface 2 a .

[0089] The first end surface 2a is the outer surface of the anti-collision component 10. The first end surface 2a may form an acute angle, an obtuse angle, or a right angle with the first direction X. For example, the first end surface 2a is perpendicular to the first direction X, and the inclined surface 1b is connected to the first end surface 2a.

[0090] One inclined surface 1b may be connected to one side of the first end surface 2a, or two inclined surfaces 1b may be connected to both sides of the first end surface 2a respectively.

[0091] As an example, the first direction X is the width direction of the box body 20, the second direction Y is the height direction of the box body 20, the slope 1b is arranged on the lower side of the anti-collision component 10, and the height of the slope 1b gradually increases as it moves away from the box body 20. When the box body 20 falls and makes the slope 1b abut against the external component, the pressure of the external component squeezing the slope 1b can cause the anti-collision component 10 to push the box body 20 away from the external component.

[0092] As an example, the first direction X is the width direction of the box body 20, the second direction Y is the height direction of the box body 20, the slope 1b is arranged on the upper side of the anti-collision component 10, and the height of the slope 1b gradually decreases as it moves away from the box body 20. When the box body 20 rises and makes the slope 1b abut against the external component, the pressure of the external component squeezing the slope 1b can cause the anti-collision component 10 to push the box body 20 away from the external component.

[0093] As an example, the first direction X is the width direction of the box body 20, the second direction Y is the length direction of the box body 20, and the inclined surface 1b is arranged on both sides of the anti-collision component 10 along the length direction of the box body 20. When the box body 20 moves along the length direction of the box body 20, the external components on any one side of the two sides along the width direction of the box body 20 contact the inclined surface 1b. The pressure of the external components squeezing the inclined surface 1b can cause the anti-collision component 10 to push the box body 20 away from the external components.

[0094] By setting the inclined surface 1b toward the first end surface 2a facing away from the box body 20, when the inclined surface 1b contacts the external component, the inclined surface 1b guides the external component to move toward the first end surface 2a until the external component separates from the anti-collision component 10 at the first end surface 2a. After contacting the inclined surface 1b, the external component separates from the anti-collision component 10, the structure is simpler, and the utilization rate of the material is improved.

[0095] In some embodiments, along the second direction Y, both sides of the first end surface 2 a are connected with inclined surfaces 1 b .

[0096] As an example, the second direction Y is the height direction, and the upper and lower sides of the first end face 2a are both provided with inclined surfaces 1b, wherein as the distance between the anti-collision component 10 and the box body 20 increases, the inclined surface 1b on the lower side of the first end face 2a tilts upward, and the inclined surface 1b on the upper side of the first end face 2a tilts downward.

[0097] By providing inclined surfaces 1b on both sides of the anti-collision member 10 along the second direction Y, the energy storage container 100 has corresponding inclined surfaces 1b that can contact external components when moving back and forth in the second direction Y, thereby guiding the box body 20 away from external components and reducing the problem of limiting the installation position of the anti-collision member 10 on the box body 20 due to the anti-collision member 10 having only one inclined surface 1b.

[0098] In some embodiments, please refer to FIG4 , which is a schematic structural diagram of an anti-collision member 10 provided in some embodiments of the present application. The anti-collision member 10 includes a first wall portion 1, a second wall portion 2, a third wall portion 3, a fourth wall portion 4, and a fifth wall portion 5 connected in sequence. The first wall portion 1 and the fifth wall portion 5 are arranged relative to each other along the second direction Y. Along the first direction X, the third wall portion 3 is farther away from the box body 20 than the first wall portion 1 and the fifth wall portion 5. The surface of the third wall portion 3 facing away from the box body 20 is the first end surface 2a, and the surface of the second wall portion 2 facing away from the fourth wall portion 4 and the surface of the fourth wall portion 4 facing away from the second wall portion 2 are both inclined surfaces 1b.

[0099] The first wall portion 1, the second wall portion 2, the third wall portion 3, the fourth wall portion 4 and the fifth wall portion 5 can be arranged separately, for example, the first wall portion 1, the second wall portion 2, the third wall portion 3, the fourth wall portion 4 and the fifth wall portion 5 are welded in sequence; the first wall portion 1, the second wall portion 2, the third wall portion 3, the fourth wall portion 4 and the fifth wall portion 5 can be integrally formed, for example, the first wall portion 1, the second wall portion 2, the third wall portion 3, the fourth wall portion 4 and the fifth wall portion 5 can be injection molded.

[0100] The first wall 1 and the fifth wall 5 can be directly connected to the box body 20 or indirectly connected to the box body 20. As an example, the first wall 1 is welded to the box body 20, and the fifth wall 5 is connected to the box body 20 via a spacer, wherein the spacer can be a metal block, a metal plate, etc.

[0101] The first wall portion 1 and the fifth wall portion 5 are arranged relative to each other along the second direction Y, which means that along the second direction Y, the projection of the first wall portion 1 and the projection of the fifth wall portion 5 are at least partially overlapped, and a gap is left between the first wall portion 1 and the fifth wall portion 5.

[0102] The third wall 3 is located between the first wall 1 and the fifth wall 5 . Any position of the third wall 3 is farther from the box 20 than at least a portion of the first wall 1 and at least a portion of the fifth wall 5 .

[0103] As an example, the first direction X is the width direction of the box body 20, the second direction Y is the height direction of the box body 20, the end of the first wall portion 1 away from the second wall portion 2 is welded to the box body 20, and the end of the fifth wall portion 5 away from the fourth wall portion 4 is welded to the box body 20, the first wall portion 1 and the fifth wall portion 5 are arranged parallel to the first direction X, and the third wall portion 3 is arranged parallel to the second direction Y. Along the length direction of the box body 20, the projected length of the third wall portion 3 is less than the distance between the first wall portion 1 and the fifth wall portion 5.

[0104] By relatively arranging the first wall portion 1 and the fifth wall portion 5 and arranging the third wall portion 3 farther away from the box body 20 than the first wall portion 1 and the fifth wall portion 5, it is beneficial to maintain a sufficient distance on the side of the second wall portion 2 and the fourth wall portion 4 away from the third wall portion 3, so that a larger first end face 2a can be set, reducing the risk of damaging external components due to the first end face 2a being too small. At the same time, an inclined surface 1b intersecting with the first direction X can be set on the second wall portion 2 and the fourth wall portion 4. When the size of the first end face 2a is determined, the inclination angle of the inclined surface 1b with the first direction X can be adjusted by adjusting the distance between the first wall portion 1 and the fifth wall portion 5, so that the guide portion 1a guides the movement of the box body 20.

[0105] In some embodiments, please refer to Figure 5, which is an exploded view of the anti-collision member 10 and the mounting base 50 provided in some embodiments of the present application. The box body 20 is provided with the mounting base 50, and the first wall portion 1, the second wall portion 2, the third wall portion 3, the fourth wall portion 4, and the fifth wall portion 5 are all connected to the mounting base 50.

[0106] The mounting seat 50 may be disposed on one side of the box body 20 along the first direction X, or may be disposed on both sides of the box body 20 along the first direction X. The anti-collision member 10 is disposed on the mounting seat 50 .

[0107] The first wall portion 1, the second wall portion 2, the third wall portion 3, the fourth wall portion 4 and the fifth wall portion 5 can all be directly connected to the mounting seat 50, for example, the first wall portion 1, the second wall portion 2, the third wall portion 3, the fourth wall portion 4 and the fifth wall portion 5 are all welded to the mounting seat 50; the first wall portion 1, the second wall portion 2, the third wall portion 3, the fourth wall portion 4 and the fifth wall portion 5 can all be indirectly connected to the mounting seat 50, for example, the first wall portion 1, the second wall portion 2, the third wall portion 3, the fourth wall portion 4 and the fifth wall portion 5 are all bonded to the mounting seat 50.

[0108] The anti-collision component 10 is set on the box body 20 through the mounting seat 50, and the first wall portion 1, the second wall portion 2, the third wall portion 3, the fourth wall portion 4 and the fifth wall portion 5 are all connected to the mounting seat 50, which can make the structure of the first wall portion 1, the second wall portion 2, the third wall portion 3, the fourth wall portion 4 and the fifth wall portion 5 more stable.

[0109] In some embodiments, the first wall portion 1, the second wall portion 2, the third wall portion 3, the fourth wall portion 4 and the fifth wall portion 5 collectively define an accommodation space 30a. The mounting base 50 includes at least one mounting plate 501, which is accommodated in the accommodation space 30a.

[0110] The number of mounting plates 501 may be one or more. As an example, the number of mounting plates 501 is one, and one mounting plate 501 is arranged on one side of the box body 20 along the first direction X. The mounting plate 501 may connect the first wall portion 1, the second wall portion 2, the third wall portion 3, the fourth wall portion 4 and the fifth wall portion 5; the mounting plate 501 may indirectly connect the first wall portion 1, the second wall portion 2, the third wall portion 3, the fourth wall portion 4 and the fifth wall portion 5. As an example, the mounting plate 501 is connected to the first wall portion 1, the second wall portion 2, the third wall portion 3, the fourth wall portion 4 and the fifth wall portion 5 through a buffer pad, wherein the buffer pad may be a wood block, rubber, etc.

[0111] By disposing the mounting plate 501 in the accommodation space 30 a , the structural strength of the accommodation space 30 a is enhanced, so that when the anti-collision member 10 contacts external components, the anti-collision member 10 can withstand greater force and maintain its structure.

[0112] 5 , the mounting base 50 includes a plurality of mounting plates 501 , which are spaced apart in the accommodation space 30 a along the third direction Z. The first direction X, the second direction Y, and the third direction Z are not coplanar and intersect with each other.

[0113] The first direction X, the second direction Y, and the third direction Z may form acute angles, obtuse angles, or right angles with each other. As an example, the first direction X, the second direction Y, and the third direction Z are perpendicular to each other, and the mounting plates 501 are spaced apart along the third direction Z. Spaced apart means that two adjacent mounting plates 501 do not touch each other and there is a gap between them.

[0114] By providing a plurality of mounting plates 501 , the structure of the anti-collision component 10 is made more stable and has higher strength.

[0115] In some embodiments, referring to Figures 6 and 7 , Figure 6 is a side view of an anti-collision member 10 provided in some embodiments of the present application, and Figure 7 is a front view of an anti-collision member 10 provided in some embodiments of the present application. The anti-collision member 10 is formed by bending a plate to form a first wall portion 1, a second wall portion 2, a third wall portion 3, a fourth wall portion 4, and a fifth wall portion 5.

[0116] The material of the plate can be iron, steel, aluminum alloy, stainless steel, etc.

[0117] The first wall portion 1 , the second wall portion 2 , the third wall portion 3 , the fourth wall portion 4 and the fifth wall portion 5 are formed by bending the plate, which facilitates the processing and manufacturing of the anti-collision member 10 , reduces the processing cost, and maintains the connection strength of the anti-collision member 10 at the bending point.

[0118] In some embodiments, please refer to FIG8 , which is a schematic structural diagram of an anti-collision member 10 provided in some embodiments of the present application. The anti-collision member 10 includes an elastic block 6 , and the first end surface 2 a is the surface of the elastic block 6 facing away from the box body 20 .

[0119] The elastic block 6 can be made of rubber, polyamide fiber, steel, etc.

[0120] The elastic block 6 can be connected to the box body 20, and the elastic block 6 and the box body 20 are snap-fitted; the elastic block 6 can be indirectly connected to the box body 20, and the elastic block 6 and the box body 20 are bonded.

[0121] The elastic block 6 can be a solid block or a hollow block. As an example, the elastic block 6 has a hollow cavity, which is wrapped in the elastic block 6. The hollow cavity facilitates the elastic block 6 to buffer the impact force of external components on the box body 20.

[0122] By using the elastic block 6 as the anti-collision member 10, when the external component contacts the anti-collision member 10, the anti-collision member 10 can be deformed to reduce the risk of damage to the anti-collision member 10. The first end surface 2a is provided with inclined surfaces 1b on both sides along the second direction Y, so that when the anti-collision member 10 moves along the second direction Y, the inclined surfaces 1b on both sides of the first end surface 2a can contact the external component to guide the energy storage container 100 away from the external component.

[0123] In some embodiments, please refer to Figure 9, which is an exploded view of the anti-collision member 10 and the mounting seat 50 provided in some other embodiments of the present application. The box body 20 is provided with the mounting seat 50, and the elastic block 6 is detachably connected to the mounting seat 50.

[0124] The number of the mounting base 50 can be one or more. As an example, the plurality of mounting bases 50 are arranged on both sides of the box body 20 along the first direction X. The first direction X can be the width direction, length direction or height direction of the box body 20.

[0125] The elastic block 6 and the mounting seat 50 may be detachably connected via a bolt 50b; the elastic block 6 and the mounting seat 50 may be detachably clamped.

[0126] As an example, as shown in Figure 9, the mounting base 50 can be set on the box body 20 (not shown in the figure), and a plurality of through holes 6a are provided on the elastic block 6 along the first direction X, and a plurality of screw holes 50a corresponding to the through holes 6a are provided on the mounting base 50. When the bolt 50b locks the elastic block 6 on the mounting base 50, the bolt 50b passes through the through hole 6a and is screwed into the screw hole 50a.

[0127] The elastic block 6 is detachably connected to the box body 20 via the mounting seat 50 , so that the elastic block 6 can be easily replaced.

[0128] In some embodiments, please refer to Figure 10, which is a schematic diagram of the structure of an anti-collision member 10 provided in some other embodiments of the present application. The anti-collision member 10 is disposed on at least one side of the box 20 along a first direction X. The guide portion 1a includes an arcuate surface 1c, the centerline of which extends along a third direction Z, intersecting the first direction X and the third direction Z.

[0129] Any two of the first direction X, the second direction Y, and the third direction Z may form an acute angle, an obtuse angle, or a right angle. As an example, the first direction X, the second direction Y, and the third direction Z are perpendicular to each other.

[0130] The center line of the arc surface 1c is a straight line formed by connecting the intersection points of straight lines in the tangential direction perpendicular to any point on the arc surface 1c. As an example, as shown in Figure 10, the anti-collision component 10 is in the shape of a cylinder 101, and the anti-collision component 10 has two circular end faces. The straight line connecting the centers of the two circular end faces is the center line of the anti-collision component 10, and at least a portion of the arc-shaped side wall of the anti-collision component 10 is a guide portion 1a.

[0131] By providing the arc surface 1c, when an external component abuts against the arc surface 1c along a non-tangential direction of the arc surface 1c, the arc surface 1c can guide the energy storage container 100 away from the external component, thereby achieving a better guiding effect.

[0132] In some embodiments, please continue to refer to Figure 10, the anti-collision component 10 includes a column 101, the axis 101a of the column 101 extends along the third direction Z, the column 101 has an outer peripheral surface 1011, the outer peripheral surface 1011 is arranged around the axis 101a, and at least a portion of the outer peripheral surface 1011 is a circular arc surface 1c.

[0133] The anti-collision member 10 may be rotatably mounted on the box body 20 , or may be fixedly mounted on the box body 20 .

[0134] The entire outer circumferential surface 1011 may be a circular arc surface 1c, or a portion of the outer circumferential surface 1011 may be a circular arc surface 1c. As an example, the anti-collision component 10 is welded to one side of the box body 20 along the first direction X. Along the first direction X, the outer circumferential surface 1011 of the anti-collision component 10 on the side away from the box body 20 is a circular arc surface 1c. The first direction X may be the width direction of the box body 20, the second direction Y may be the height direction of the box body 20, and the third direction Z may be the length direction of the box body 20. Along the first direction X pointing from the box body 20 to the anti-collision component 10, the distance between the two sides of the circular arc surface 1c along the second direction Y decreases.

[0135] In some embodiments where the anti-collision component 10 is in the shape of a cylinder 101 , the outer peripheral surface 1011 may be an arc-shaped side wall, and the axis 101 a may be a center line.

[0136] By using a portion or all of the outer peripheral surface 1011 of the column 101 as the arc surface 1c, the time required for adjusting the setting angle of the anti-collision member 10 when the column 101 is installed is reduced, and the installation of the anti-collision member 10 is more convenient.

[0137] In some embodiments, please refer to Figures 11 and 12. Figure 11 is an exploded view of the anti-collision member 10 and the mounting base 50 provided in some embodiments of the present application, and Figure 12 is a side view of the anti-collision member 10 and the mounting base 50 provided in some embodiments of the present application. The housing 20 is provided with the mounting base 50, and the column 101 is rotatably provided on the mounting base 50 around the axis 101a.

[0138] The number of the mounting base 50 can be one or more. For example, the number of the mounting base 50 is multiple, and the multiple mounting bases 50 are arranged on both sides of the box body 20 along the first direction X. The first direction X can be the width direction of the box body 20.

[0139] As an example, the third direction Z may be the length direction of the box body 20 , and the axis 101 a extends along the third direction Z.

[0140] The column 101 may be directly rotatably set on the mounting seat 50. As an example, the mounting seat 50 has two protrusions arranged opposite to each other along the third direction Z. The column 101 is provided with grooves at both ends along the third direction Z. The protrusions are provided in the grooves to realize the rotational connection between the column 101 and the mounting seat 50; the column 101 may also be rotatably set on the mounting seat 50 through external components. The external components may be pins 71, bearings, etc. As an example, along the third direction Z, two bearings arranged opposite to each other are provided on the mounting seat 50, and the column 101 is rotatably connected to the mounting seat 50 through the bearings.

[0141] The column 101 is rotatably arranged on the mounting seat 50. When an external component contacts the column 101, the column 101 can reduce the risk of damage due to friction between the external component and the column 101 by rotating, and the entire outer peripheral surface 1011 of the column 101 can be used as an arc surface 1c, thereby increasing the usable area of ​​the guide portion 1a.

[0142] In some embodiments, please continue to refer to Figure 11. The mounting base 50 includes two mounting plates 501. Along the third direction Z, the two mounting plates 501 are arranged on both sides of the column 101. The column 101 is rotatably connected to the two mounting plates 501 through the connecting shaft 7.

[0143] The connecting shaft 7 may be fixedly connected to the column 101, and the connecting shaft 7 may be rotatably connected to the mounting plate 501. Alternatively, the column 101 may be rotatably mounted on the connecting shaft 7, and the connecting shaft 7 may be fixedly mounted on the mounting plate 501. Alternatively, the column 101 may be rotatably mounted on the connecting shaft 7, and the connecting shaft 7 may be rotatably connected to the mounting plate 501. The fixed connection may be adhesive bonding, welding, or the like.

[0144] As an example, as shown in Figure 11, the connecting shaft 7 includes a latch 71 and a cotter pin 72. Along the third direction Z, the column 101 is provided with a through hole, and the two mounting plates 501 are relatively provided with two locking holes. One end of the latch 71 is a latch cap and the other end is provided with a locking hole. When the column 101 is rotated and set on the mounting plate 501, the latch 71 sequentially passes through a locking hole, a through hole and another locking hole, and the cotter pin 72 is locked in the lock hole. The cotter pin 72 and the latch 71 cap are located on both sides of the two mounting plates 501 along the third direction Z.

[0145] By arranging the mounting plates 501 on both sides of the column 101 along the third direction Z, the stability of the column 101 is improved, and the rotation of the column 101 on the box 20 is facilitated.

[0146] In some embodiments, please continue to refer to Figures 13 and 14. Figure 13 is a schematic structural diagram of an energy storage container 100 provided in yet other embodiments of the present application, and Figure 14 is a partial enlarged view of area B in Figure 13. The box body 20 includes a crossbeam 60. Along the width direction of the box body 20, the box body 20 has a first side 100a and a second side 100b opposite to each other. The first side 100a and / or the second side 100b are provided with the crossbeam 60. The crossbeam 60 extends along the length direction of the box body 20 and is provided with an anti-collision member 10. The length direction, width direction, and height direction of the box body 20 are perpendicular to each other, and the first direction X is parallel to the width direction of the box body 20.

[0147] The box body 20 may be provided with a crossbeam 60 on one side along the first direction X, for example, the first side 100a is provided with a crossbeam 60, or the second side 100b is provided with a crossbeam 60; or the box body 20 may be provided with crossbeams 60 on both sides along the first direction X, that is, crossbeams 60 are provided on both the first side 100a and the second side 100b.

[0148] The crossbeam 60 may be provided throughout the length direction of the box body 20 , and the length of the crossbeam 60 may also be smaller than the length of the box body 20 .

[0149] The crossbeam 60 may be located at the top, bottom, or middle of the first side 100 a ; the crossbeam 60 may also be located at the top, bottom, or middle of the second side 100 b .

[0150] As an example, as shown in FIG. 14 , the crossbeam 60 is located at the bottom of the first side 100 a of the box body 20 , and the anti-collision member 10 is disposed on the crossbeam 60 .

[0151] The crossbeam 60 is provided on the first side 100a and / or the second side 100b of the box body 20 to help enhance the structural strength of the box body 20. When the guide portion 1a of the anti-collision member 10 contacts the external component, the guide portion 1a applies lateral pressure to the crossbeam 60, and the crossbeam 60 then transfers the force to the box body 20, causing the box body 20 to move along its width direction to move away from the external component, thereby reducing the risk of the anti-collision member 10 interfering with the movement of the energy storage container 100.

[0152] In some embodiments, a crossbeam 60 is provided at the top and / or bottom of the first side 100a along the height direction of the box body 20; and / or a crossbeam 60 is provided at the top and / or bottom of the second side 100b along the height direction of the box body 20.

[0153] The crossbeam 60 may be provided at the top of the first side 100 a ; the crossbeam 60 may be provided at the bottom of the first side 100 a ; or the crossbeam 60 may be provided at both the top and the bottom of the first side 100 a .

[0154] The crossbeam 60 may be provided at the top of the second side 100b; the crossbeam 60 may be provided at the bottom of the second side 100b; or the crossbeam 60 may be provided at both the top and the bottom of the second side 100b.

[0155] When a crossbeam 60 is provided at the bottom of the first side 100a or the bottom of the second side 100b of the box body 20, an anti-collision member 10 is provided on the crossbeam 60. When the box body 20 falls and moves toward the external component, the anti-collision member 10 can first contact the external component and guide the box body 20 away from the external component by the guide portion 1a, thereby reducing the risk of the anti-collision member 10 interfering with the movement of the energy storage container 100; when a crossbeam 60 is provided at the top of the first side 100a or the top of the second side 100b of the box body 20, an anti-collision member 10 is provided on the crossbeam 60. When the external component falls and moves toward the box body 20, the external component can first contact the anti-collision member 10 and guide the external component away from the box body 20 by the guide portion 1a of the anti-collision member 10, thereby reducing the risk of the anti-collision member 10 interfering with the movement of the energy storage container 100.

[0156] 2 to 7 , an embodiment of the present application provides an energy storage container 100, which includes a box body 20 and an anti-collision member 10. The box body 20 is provided with cross beams 60 on both sides along its width direction, and the cross beams 60 are located at the bottom of the box body 20. Anti-collision members 10 can be provided on the cross beams 60; wherein, the anti-collision member 10 includes a first wall portion 1, a second wall portion 2, a third wall portion 3, a fourth wall portion 4 and a fifth wall portion 5 formed by bending a plate, the upper surface of the second wall portion 2 is an inclined surface 1b, and the lower surface of the fourth wall portion 4 is also an inclined surface 1b. The first wall portion 1, the second wall portion 2, the third wall portion 3, the fourth wall portion 4 and the fifth wall portion 5 jointly define a accommodating space 30a, and a plurality of mounting plates 501 are provided in the accommodating space 30a, and the mounting plates 501 are connected to the box body 20, the first wall portion 1, the second wall portion 2, the third wall portion 3, the fourth wall portion 4 and the fifth wall portion 5.

[0157] When the energy storage container 100 moves downward in the height direction and approaches the external component, the inclined surface 1b on the fourth wall portion 4 contacts the external component and guides the box body 20 away from the external component in the width direction of the box body 20, thereby reducing the risk of the anti-collision member 10 interfering with the movement of the energy storage container 100.

[0158] 8 and 9 , an embodiment of the present application provides an energy storage container 100, which includes a box body 20 and an anti-collision member 10. The box body 20 is provided with crossbeams 60 on both sides along its width direction, and the crossbeams 60 are located at the bottom of the box body 20. The anti-collision member 10 can be provided on the crossbeams 60. The anti-collision member 10 includes an elastic block 6, which is connected to the crossbeam 60 via a mounting seat 50. The elastic block 6 extends along the length direction of the box body 20, and the upper and lower sides of the elastic block 6 are provided with inclined surfaces 1b.

[0159] When the energy storage container 100 moves downward in the height direction and approaches the external component, the inclined surface 1b on the lower side of the elastic block 6 contacts the external component. The inclined surface 1b guides the box body 20 away from the external component in the width direction of the box body 20, thereby reducing the risk of the anti-collision member 10 interfering with the movement of the energy storage container 100.

[0160] 10 to 12 , an embodiment of the present application provides an energy storage container 100 , which includes a box body 20 and an anti-collision member 10 . Crossbeams 60 are provided on both sides of the box body 20 along its width direction, and the crossbeams 60 are located at the bottom of the box body 20 . Anti-collision members 10 may be provided on the crossbeams 60 . The anti-collision member 10 includes a column 101 , which is rotatably connected to the mounting seat 50 via a connecting shaft 7 , and an axis 101 a of the column 101 is parallel to the length direction of the box body 20 .

[0161] When the energy storage container 100 moves downward in the height direction and approaches the external component, the outer surface of the column 101 contacts the external component. The outer surface of the column 101 can guide the box 20 away from the external component in the width direction of the box 20, thereby reducing the risk of the anti-collision member 10 interfering with the movement of the energy storage container 100, and the column 101 can rotate to reduce the friction between the column 101 and the external component.

[0162] Although the present application has been described with reference to preferred embodiments, various modifications may be made thereto and components may be substituted with equivalents without departing from the scope of the present application. In particular, the various technical features described in the various embodiments may be combined in any manner as long as there are no structural conflicts. The present application is not limited to the specific embodiments disclosed herein, but encompasses all technical solutions within the scope of the claims.

Claims

1. An energy storage container, comprising: A box body having a receiving cavity; a battery, housed in the housing cavity; an anti-collision member, arranged on the box body; Wherein, the anti-collision component includes a guide portion.

2. The energy storage container according to claim 1, wherein: The guide portion is configured to guide the energy storage container away from the external component when the energy storage container moves so that the guide portion contacts the external component.

3. The energy storage container according to claim 1, wherein: Along a first direction, the anti-collision component is provided on at least one side of the box body, and the guide portion is configured to guide the energy storage container along the first direction away from the external component when the energy storage container moves along a second direction so that the guide portion contacts the external component, and the first direction intersects with the second direction.

4. The energy storage container according to any one of claims 1 to 3, wherein: Along the first direction, the anti-collision member is arranged on at least one side of the box body; The guide portion includes an inclined surface intersecting the first direction.

5. The energy storage container according to claim 4, wherein: The anti-collision member has a first end surface. Along the first direction, the first end surface is located at an end of the anti-collision member away from the box body, and the inclined surface is connected to the first end surface.

6. The energy storage container according to claim 5, wherein: Along the second direction, both sides of the first end surface are connected with the inclined surfaces, and the second direction intersects with the first direction.

7. The energy storage container according to claim 6, wherein: The anti-collision component includes a first wall portion, a second wall portion, a third wall portion, a fourth wall portion and a fifth wall portion connected in sequence, the first wall portion and the fifth wall portion are arranged opposite to each other along the second direction, along the first direction, the third wall portion is farther away from the box body than the first wall portion and the fifth wall portion, the surface of the third wall portion facing away from the box body is the first end face, and the surface of the second wall portion facing away from the fourth wall portion and the surface of the fourth wall portion facing away from the second wall portion are both the inclined surfaces.

8. The energy storage container according to claim 7, wherein: The box body is provided with a mounting seat, and the first wall portion, the second wall portion, the third wall portion, the fourth wall portion and the fifth wall portion are all connected to the mounting seat.

9. The energy storage container according to claim 8, wherein: The first wall portion, the second wall portion, the third wall portion, the fourth wall portion and the fifth wall portion jointly define an accommodating space; The mounting seat includes at least one mounting plate, and the mounting plate is accommodated in the accommodation space.

10. The energy storage container according to claim 9, wherein: The mounting seat includes a plurality of mounting plates, which are spaced apart in the accommodation space along a third direction. The first direction, the second direction and the third direction are not coplanar and intersect with each other.

11. The energy storage container according to any one of claims 7 to 10, wherein: The anti-collision component is formed by bending a plate to form the first wall portion, the second wall portion, the third wall portion, the fourth wall portion and the fifth wall portion.

12. The energy storage container according to claim 6, wherein: The anti-collision component includes an elastic block, and the first end surface is a surface of the elastic block facing away from the box body.

13. The energy storage container according to claim 12, wherein: The box body is provided with a mounting seat, and the elastic block is detachably connected to the mounting seat.

14. The energy storage container according to any one of claims 1 to 3, wherein: Along the first direction, the anti-collision member is arranged on at least one side of the box body; The guide portion includes an arc surface, a center line of the arc surface extends along a third direction, and the first direction intersects the third direction.

15. The energy storage container according to claim 14, wherein: The anti-collision component includes a column, the axis of the column extends along the third direction, the column has an outer peripheral surface, the outer peripheral surface is arranged around the axis, and at least a portion of the outer peripheral surface is the arc surface.

16. The energy storage container according to claim 15, wherein: The box body is provided with a mounting seat, and the column is rotatably arranged on the mounting seat around the axis.

17. The energy storage container according to claim 16, wherein: The mounting seat includes two mounting plates. Along the third direction, the two mounting plates are respectively arranged on both sides of the column. The column is rotatably connected to the two mounting plates via a connecting shaft.

18. The energy storage container according to any one of claims 1 to 17, wherein: Along the width direction of the box body, the box body has a first side and a second side relative to each other, and the first side and / or the second side are provided with a crossbeam, and the crossbeam extends along the length direction of the box body, and the crossbeam is provided with the anti-collision part, and the length direction of the box body, the width direction of the box body and the height direction of the box body are perpendicular to each other.

19. The energy storage container according to claim 18, wherein: The crossbeam is provided at the top and / or bottom of the first side along the height direction of the box body; and / or the crossbeam is provided at the top and / or bottom of the second side along the height direction of the box body.

Citation Information

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