Base and energy storage cabinet

By designing a base with intersecting forklift components and a blocking structure, the problem of restricted forklift handling direction was solved, enabling forklifts to freely enter in two directions and ensuring the stability of the base, thus adapting to the transportation needs of complex sites.

CN223714354UActive Publication Date: 2025-12-23SUNGROW POWER SUPPLY CO LTD
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Patent Information

Application Number
CN202520250377.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-17
Publication Date
2025-12-23
Estimated Expiration
2035-02-17

AI Technical Summary

Technical Problem

The existing one-way forklift method restricts the direction of forklift movement when transporting energy storage cabinets, which cannot meet the actual transportation needs.

Method used

Design a base with intersecting first and second directions. The base includes at least two first and second forklifts, with interconnected forklift slots and sealing elements to prevent foreign objects from entering, forming a two-dimensional mesh channel structure. Support beams improve rigidity, and fixing components ensure stability.

Benefits of technology

It allows forklifts to enter freely in two directions, avoiding restrictions on the direction of handling, enhancing the rigidity and stability of the base, protecting the safety inside the forklift slot, and adapting to the transportation needs of complex sites.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a base and an energy storage cabinet, relates to the technical field of energy storage cabinets, and is used for solving the problems that the carrying direction of a forklift is limited in the carrying process and the actual transportation requirement cannot be met due to an existing single-direction forklift mode. The base has the first direction and the second direction which intersect with each other, the base comprises at least two first forking and conveying pieces, the first forking and conveying pieces are arranged in the first direction at intervals and extend in the second direction, and a first forking and conveying groove is formed in each first forking and conveying piece; the at least two second forking conveying parts are arranged in the second direction at intervals and extend in the first direction, a second forking conveying groove is formed in each second forking conveying part, and the second forking conveying groove in each second forking conveying part communicates with the first forking conveying groove in any first forking conveying part; the first plugging piece is configured to plug the first forking groove; and the second plugging piece is configured to plug the second forking groove. The forklift is used for preventing the carrying direction of the forklift from being limited in the carrying process.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of energy storage cabinets, and particularly relates to a base and an energy storage cabinet. BACKGROUND

[0002] The base is a transport structural member of the energy storage cabinet and bears the mechanical load of the cabinet body during transportation. The energy storage cabinet can be transported by hoisting or by a forklift. In order to realize forklift transportation, a forklift slot extending in a single direction is usually formed on the base to allow the tines of the forklift to enter. In recent years, as the land energy density of the energy storage cabinet is higher and higher and the space is limited in the actual station-level layout of the energy storage cabinet, the original single-direction forklift mode limits the direction of the forklift during the handling process and cannot meet the actual transportation needs. CONTENT OF THE UTILITY MODEL

[0003] The present application provides a base and an energy storage cabinet, which can solve the problem that the existing single-direction forklift mode limits the direction of the forklift during the handling process and cannot meet the actual transportation needs.

[0004] To achieve the above purpose, in a first aspect, the base provided by the present application has a first direction and a second direction intersecting each other, and the base comprises:

[0005] at least two first forklift members, which are arranged at intervals in the first direction and each extend in the second direction, and each of which has a first forklift slot formed therein;

[0006] at least two second forklift members, which are arranged at intervals in the second direction and each extend in the first direction, and each of which has a second forklift slot formed therein, and the second forklift slot in each of the second forklift members and the first forklift slot in any of the first forklift members are in communication with each other;

[0007] a first blocking member configured to block the first forklift slot;

[0008] a second blocking member configured to block the second forklift slot.

[0009] In some embodiments of the present application, the base further comprises:

[0010] at least two first support beams, each of the first forklift members being connected between two adjacent first support beams in the second direction;

[0011] at least two second support beams, each of the second forklift members being connected between two adjacent second support beams in the first direction, and the second support beams being connected with the first support beams.

[0012] In some embodiments of the present application, both ends of each of the second support beams in the second direction are connected between the end portions on the same side of the two adjacent first support beams in the first direction.

[0013] In some embodiments of the present application,

[0014] Each first support beam is provided with a plurality of first forklift ports, each first forklift port being in communication with a corresponding first forklift groove;

[0015] Each second support beam is provided with a plurality of second forklift ports, each second forklift port being in communication with a corresponding second forklift groove.

[0016] In some embodiments of the present application, the first blocking member includes a plurality of first blocking plates, and the second blocking member includes a plurality of second blocking plates, each first blocking plate being connected to a first support beam to block a corresponding first forklift port, and each second blocking plate being connected to a second support beam to block a corresponding second forklift port.

[0017] In some embodiments of the present application, the base further includes two groups of fixing assemblies, each group of fixing assemblies being connected to the opposite sides of the two first support beams in the second direction, and each group of fixing assemblies including at least two fixing members arranged at intervals in the first direction.

[0018] In some embodiments of the present application, the base further includes two grounding rows, each grounding row being arranged on the opposite sides of the two first support beams in the second direction.

[0019] In some embodiments of the present application, the first forklift member is provided with a first wire hole, the first wire hole being in communication with the first forklift groove, and the port of the first forklift member being configured to allow the wire to pass out;

[0020] and / or;

[0021] The second forklift member is provided with a second wire hole, the second wire hole being in communication with the second forklift groove, and the port of the second forklift member being configured to allow the wire to pass out.

[0022] In some embodiments of the present application, the cross-sectional shape of the first forklift member and / or the second forklift member is a closed quadrilateral.

[0023] In some embodiments of the present application, the first forklift member and / or the second forklift member is provided with a weight-reducing hole.

[0024] In a second aspect, the present application also provides an energy storage cabinet, which comprises:

[0025] The base as described in any of the above technical solutions has the first direction, the second direction and the third direction intersecting with each other in pairs;

[0026] The cabinet body includes a top plate and a bottom plate arranged opposite to each other in the third direction, and the base is connected to the bottom plate.

[0027] In some embodiments of the present application, the energy storage cabinet further comprises:

[0028] A plurality of lifting rings are connected with the top plate and are arranged at intervals along the first direction and the second direction.

[0029] The above technical solutions of the present application have at least the following beneficial effects:

[0030] In specific use, the first forklift channel and the second forklift channel are both used for the insertion of the tines of a forklift, so that the forklift can freely enter in either of the two directions (the first direction and the second direction), rather than the original single-direction insertion mode, avoiding the problem of limited carrying direction of the forklift during carrying, so as to better meet the actual transportation needs. In addition, the second forklift channel in each second forklift member is in communication with the first forklift channel in any first forklift member, forming a two-dimensional mesh channel structure. In other words, the first forklift channel penetrates along the second direction, and the second forklift channel penetrates along the first direction, so that the insertion depth of the tines is not limited. In addition, the design of the first blocking member can block the first forklift channel, effectively preventing foreign matter from entering the first forklift channel and protecting the safety of the inside of the first forklift channel, which is particularly important in the scenario of applying the base to cable management. Similarly, the design of the second blocking member can block the second forklift channel, effectively preventing foreign matter from entering the second forklift channel and protecting the safety of the inside of the second forklift channel, which is particularly important in the scenario of applying the base to cable management. BRIEF DESCRIPTION OF DRAWINGS

[0031] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following will briefly introduce the drawings needed to be used in the embodiment description. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can also be obtained by those skilled in the art without creative labor.

[0032] Figure 1 is one of the perspective views of the base in the embodiments of the present application;

[0033] Figure 2 is the second perspective view of the base in the embodiments of the present application;

[0034] Figure 3 is the bottom view of the base in the embodiments of the present application;

[0035] Figure 4 is the perspective view of the energy storage cabinet in the embodiments of the present application.

[0036] The main reference signs in the drawings of the present application specification are explained as follows:

[0037] 1 - first forklift member; 11 - first forklift channel; 12 - first threading hole;

[0038] 2 - second forklift member; 21 - second forklift channel;

[0039] 3 - first blocking member; 31 - first blocking plate;

[0040] 4 - second blocking member; 41 - second blocking plate;

[0041] 5 - first support beam; 51 - first forklift port;

[0042] 6 - second support beam; 61 - second forklift port;

[0043] 7 - fixing assembly; 71 - fixing member;

[0044] 8 - grounding row;

[0045] 9 - weight-reducing hole;

[0046] 10 - base;

[0047] 20 - cabinet body;

[0048] 30 - lifting ring;

[0049] X - first direction; Y - second direction; Z - third direction. DETAILED DESCRIPTION

[0050] The technical solutions in the embodiments of the present application will be described clearly and completely below in combination with the drawings in the embodiments of the present application. Obviously, the described embodiments are only some of the embodiments of the present application, but not all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work fall within the scope of protection of the present application.

[0051] In the description of the present application, it should be understood that the terms "center", "upper", "lower", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer" and the like indicate the orientation or positional relationship shown in the drawings, and are only for the purpose of facilitating the description of the present application and simplifying the description, and do not indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation of the present application.

[0052] The terms "first", "second" are only for the purpose of description, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the technical features indicated. Therefore, the features defined with "first", "second" can explicitly or implicitly include one or more of the features. In the description of the present application, unless otherwise specified, the meaning of "a plurality of" is two or more.

[0053] In the description of the present application, it should be noted that unless otherwise explicitly specified and limited, the terms "mounting", "connection", "connecting" should be understood in a broad sense, for example, it can be fixed connection, or detachable connection, or integral connection; it can be mechanical connection, or direct connection, or indirect connection through intermediate medium, or internal communication of two elements. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.

[0054] The present application provides a base and an energy storage cabinet, which are described in detail below. It should be noted that the sequence of the following embodiment descriptions does not limit the preferred sequence of the embodiments of the present application. Moreover, the description of each embodiment in the following embodiments has its own emphasis, and the parts not described in detail in a certain embodiment can be referred to the related description of other embodiments.

[0055] The energy storage cabinet generally includes a cabinet body and a base arranged below the cabinet body. The cabinet body is used to store and protect the core components (such as battery modules, battery management systems, electrical equipment, etc.) in the energy storage system. It is widely used in energy storage systems, especially in photovoltaic power generation, wind power generation, grid peak shaving, backup power supply and other scenarios. The base is arranged below the cabinet body and plays the roles of mechanical bearing, cabinet fixing and cabinet transportation. When the above-mentioned energy storage cabinet is used in outdoor or humid environment, the base can isolate the cabinet body from the ground to avoid the damage of moisture or accumulated water to the equipment, thereby prolonging the service life of the equipment. The base can integrate grounding devices to make the entire cabinet body meet the safety grounding requirements and prevent electric leakage accidents.

[0056] In addition, as the transportation structure of the cabinet body, the base bears the mechanical bearing role of the cabinet body during transportation. The energy storage cabinet can be transported by hoisting or forklift. Hoisting transportation is affected by the site and hoisting equipment, and small cabinets usually use forklift transportation. In recent years, the land energy density of the energy storage cabinet is getting higher and higher, and the site space is limited when the energy storage cabinet is actually laid out. The original single-direction forklift insertion method no longer meets the actual transportation needs. Therefore, the present application provides a new type of base for overcoming the transportation and installation needs in complex site space.

[0057] Reference Figure 1 and Figure 2, the base 10 has a first direction X and a second direction Y intersecting each other, and the base 10 comprises at least two first fork members 1, at least two second fork members 2, a first blocking member 3 and a second blocking member 4. The at least two first fork members 1 are arranged in the first direction X and each extends in the second direction Y, and each of the first fork members 1 is formed with a first fork groove 11. The at least two second fork members 2 are arranged in the second direction Y and each extends in the first direction X, and each of the second fork members 2 is formed with a second fork groove 21, and the second fork groove 21 in each of the second fork members 2 is in communication with the first fork groove 11 in any of the first fork members 1. The first blocking member 3 is configured to block the first fork groove 11. The second blocking member 4 is configured to block the second fork groove 21.

[0058] In specific use, the first fork groove 11 and the second fork groove 21 are both used for insertion of the tines of a forklift truck, so that the forklift truck can freely enter in either of the two directions (the first direction X and the second direction Y), instead of the original single direction insertion mode, thereby avoiding the problem of limited carrying direction of the forklift truck during carrying, and better meeting the actual transportation needs. In addition, the second fork groove 21 in each of the second fork members 2 is in communication with the first fork groove 11 in any of the first fork members 1, forming a two-dimensional network channel structure. In other words, the first fork groove 11 penetrates in the second direction Y, and the second fork groove 21 penetrates in the first direction X, so that the insertion depth of the tines is not limited. In addition, the design of the first blocking member 3 can block the first fork groove 11, effectively preventing foreign matter from entering the first fork groove 11, and protecting the safety inside the first fork groove 11, which is particularly important in the scenario of application of the base to cable management. Similarly, the design of the second blocking member 4 can block the second fork groove 21, effectively preventing foreign matter from entering the second fork groove 21, and protecting the safety inside the second fork groove 21, which is particularly important in the scenario of application of the base to cable management.

[0059] For example, the above-mentioned first fork member 1 and the second fork member 2 are both two, and each of the fork members is correspondingly provided with one fork groove.

[0060] The base 10 further comprises at least two first support beams 5 and at least two second support beams 6. Each of the first fork members 1 is connected between two adjacent first support beams 5 in the second direction Y. Each of the second fork members 2 is connected between two adjacent second support beams 6 in the first direction X, and the second support beam 6 is connected with the first support beam 5. The first support beam 5, the second support beam 6, the first fork member 1 and the second fork member 2 are connected to form a firm frame structure, which improves the overall rigidity of the base 10, so that the base 10 can effectively bear the cabinet body 20 (see the reference numeral in the accompanying drawings) and the like. Figure 4The weight of the energy storage cabinet. Thus, the energy storage cabinet can maintain higher stability during transportation or storage, effectively avoiding deformation or distortion of the base 10 during transportation or use.

[0061] Based on the above embodiment, the two ends of each second support beam 6 in the second direction Y are connected between the ends of the same side of the two adjacent first support beams 5 in the first direction X, respectively, to form a mutually supporting closed loop structure. Through the cooperation of the transverse and longitudinal directions, the rigidity of the entire base 10 is increased, preventing the base 10 from deforming or distorting when subjected to gravity or external force. Such a connection mode can effectively disperse the load, and the force can be evenly distributed along the support beams (first support beams 5 and second support beams 6), so that the force is transmitted more evenly on the entire base 10, avoiding excessive concentration of stress in some areas, and further enhancing the overall rigidity of the base 10.

[0062] Please continue to refer to Figure 1 and Figure 2 Each first support beam 5 is provided with a plurality of first forklift openings 51, and each first forklift opening 51 is in communication with a corresponding first forklift slot 11. Each second support beam 6 is provided with a plurality of second forklift openings 61, and each second forklift opening 61 is in communication with a corresponding second forklift slot 21. Thus, the design of each forklift opening (first forklift opening 51 and second forklift opening 61) and the corresponding forklift slot (first forklift slot 11 and second forklift slot 21) can ensure smoothness when the fork teeth of the forklift enter and exit, avoiding problems such as jamming or excessive friction resistance during transportation. At the same time, during the manufacturing process, only a number of forklift openings (first forklift openings 51 and second forklift openings 61) matching the number of forklift slots (first forklift slots 11 and second forklift slots 21) need to be made on a beam (first support beam 5 and second support beam 6). During the installation process, only the corresponding forklift member (first forklift member 1 and second forklift member 2) needs to be welded to the corresponding forklift opening (first forklift opening 51 and second forklift opening 61), and the design of the forklift opening can provide installation positioning for the installation of the support beam (first support beam 5 and second support beam 6).

[0063] The first blocking member 3 includes a plurality of first blocking plates 31, and the second blocking member 4 includes a plurality of second blocking plates 41. Each first blocking plate 31 is detachably connected to the first support beam 5 to block the corresponding first forklift opening 51. Each second blocking plate 41 is detachably connected to the second support beam 6 to block the corresponding second forklift opening 61. The detachable connection of the first blocking plate 31 and the second blocking plate 41 allows the system to flexibly block or open the corresponding forklift opening as needed to physically isolate the corresponding forklift opening. For example, when the base 10 is in a non-transportation state, the first blocking plate 31 and the second blocking plate 41 are used to block the corresponding forklift opening.

[0064] The first sealing plate 31 and the second sealing plate 41 also help to improve the neatness of the appearance of the base 10. Moreover, the first sealing plate 31 and the second sealing plate 41 have relatively low precision in manufacturing size, as long as they can cover or seal the corresponding forklift port, and there is no matching relationship between them and the forklift port. In addition, the first sealing plate 31 and the second sealing plate 41 are usually made of high-strength and wear-resistant materials (such as metal materials, etc.), which can withstand greater physical pressure, environmental changes and friction. Compared with other sealing members, the first sealing plate 31 and the second sealing plate 41 will not age or corrode due to high temperature, humidity, sunlight, etc., ensuring long-term stability.

[0065] Of course, in other embodiments, the first sealing member 3 and the second sealing member 4 can also be sealing plugs. Alternatively, the first sealing member 3 and the second sealing member 4 are of an integrated structure to seal multiple forklift ports located on the same support beam at the same time. Alternatively, a slot is formed on the top plate of the forklift member, the slot is used to communicate the outside of the corresponding forklift member with the forklift channel in the forklift member, and the sealing member is substantially T-shaped. The smaller part of the T-shaped size is inserted into the corresponding forklift channel through the slot to seal the forklift channel.

[0066] Among them, the base 10 further comprises two groups of fixing assemblies 7, which are respectively connected to the opposite sides of the two first support beams 5 in the second direction Y. Each group of fixing assemblies 7 comprises at least two fixing members 71 arranged at intervals along the first direction X, which are used to fixedly connect the base 10 to the foundation, thereby helping to prevent the base 10 from being displaced or tilted due to external forces (such as transportation, vibration, load, etc.) during use, thereby improving the stability of the entire energy storage cabinet. Moreover, by arranging the fixing members 71, the first support beams 5 and the foundation can be fixedly connected more simply.

[0067] For example, the fixing member 71 comprises a first plate portion and a second plate portion in an L shape, the first plate portion is used to connect with the first support beam 5, and the second plate portion is used to connect with the foundation. Moreover, the first plate portion and the first support beam 5 are connected together by bolts, and the second plate portion and the foundation are connected together by bolts.

[0068] In some embodiments of the present application, the base 10 further comprises two grounding rows 8, which are respectively arranged on the opposite sides of the two first support beams 5 in the second direction Y. One of the main functions of the grounding row 8 is to provide an effective grounding system for the energy storage cabinet, ensuring the safety of the internal and external electrical systems of the energy storage cabinet, so as to meet the electrical safety standards. For example, when the energy storage cabinet fails (such as electrical short circuit or leakage), the grounding row 8 can timely guide the current into the ground to prevent the energy storage cabinet from being electrified to cause the risk of electric shock, thereby ensuring the safety of the operators and surrounding personnel.

[0069] Please continue to refer to Figure 1And Figure 2 In some embodiments, the first forklift 1 is provided with a first wire hole 12, the first wire hole 12 is in communication with the first forklift groove 11, and the port of the first forklift 1 is configured to allow the wire to pass out. In other embodiments, the second forklift 2 is provided with a second wire hole, the second wire hole is in communication with the second forklift groove 21, and the port of the second forklift is configured to allow the wire to pass out. In yet other embodiments, the first forklift 1 is provided with a first wire hole 12, the first wire hole 12 is in communication with the first forklift groove 11, and the port of the first forklift 1 is configured to allow the wire to pass out. The second forklift 2 is provided with a second wire hole, the second wire hole is in communication with the second forklift groove 21, and the port of the second forklift is configured to allow the wire to pass out.

[0070] In the above manner, a clear and protected wiring channel is provided for the wire, avoiding disorganized wiring and improving wiring efficiency and optimizing the wiring path. In addition, the wire is arranged in the forklift groove (first forklift groove 11 and / or second forklift groove 21), effectively utilizing the internal space of the forklift, saving external wiring space, and making the overall structure more compact. Furthermore, hiding the wire in the forklift groove (first forklift groove 11 and / or second forklift groove 21) can avoid damage to the wire caused by external environmental factors (such as wear, pulling, and extrusion), thereby facilitating the realization of power and signal wiring of the energy storage cabinet.

[0071] Optionally, the cross-sectional shape of the first forklift 1 and / or the second forklift 2 is a closed quadrilateral, which provides a stable contact surface for the forklift, ensuring that the forklift and the first forklift 1 and / or the second forklift 2 cooperate more stably, reducing the possibility of the forklift slipping or mispositioning from the first forklift 1 and / or the second forklift 2 when the forklift encounters bumps or travels on uneven ground, further improving the safety of transportation.

[0072] It should be noted that for embodiments that include both "the first forklift 1 is provided with a first wire hole 12, the first wire hole 12 is in communication with the first forklift groove 11, and the port of the first forklift 1 is configured to allow the wire to pass out. And / or. The second forklift 2 is provided with a second wire hole, the second wire hole is in communication with the second forklift groove 21, and the port of the second forklift is configured to allow the wire to pass out", and "the cross-sectional shape of the first forklift 1 and / or the second forklift 2 is a closed quadrilateral", the closed quadrilateral cross-section forms an internally closed space, which can well protect the internal wire and avoid damage to the wire by external factors (such as dust, humidity, corrosive gas, or mechanical impact).

[0073] Please refer to Figure 1 And Figure 3The first forking member 1 and / or the second forking member 2 is provided with a weight-reducing hole 9. Whether the first forking member 1 or the second forking member 2 is provided with the weight-reducing hole 9, the mass of the base 10 can be significantly reduced, which is directly beneficial to the transportation, installation and handling of the energy storage cabinet, especially in scenarios requiring multiple forking or moving. In mass production, the weight-reducing hole 9 reduces the amount of material used, effectively reducing the manufacturing cost of the base 10. In the drawings of the present application, only the embodiment in which the second forking member 2 is provided with the weight-reducing hole 9 is shown. Of course, in other embodiments not shown in the drawings of the present application, the first forking member 1 can also be provided with the weight-reducing hole 9.

[0074] In some embodiments of the present application, as shown in Figure 4 The energy storage cabinet provided by the present application includes the base 10 and the cabinet body 20 as described in any of the above technical solutions. The base 10 has the first direction X, the second direction Y and the third direction Z intersecting with each other. The cabinet body 20 includes the top plate and the bottom plate arranged opposite to each other along the third direction Z, and the base 10 is connected with the bottom plate. Since the base in the energy storage cabinet provided by the present application has the same structure as described above, both can solve the same technical problems and achieve the same technical effects.

[0075] Based on the above-mentioned embodiments, the energy storage cabinet further includes a plurality of lifting rings 30, and the plurality of lifting rings 30 are connected with the top plate and are arranged at intervals along the first direction X and the second direction Y. Among them, the plurality of lifting rings 30 are distributed at a plurality of positions on the top plate, which can uniformly distribute the lifting force to the cabinet body 20, reducing the risk of excessive local stress caused by single-point lifting, thereby effectively avoiding the deformation or damage of the cabinet body 20 caused by excessive single-point stress.

[0076] In the description of the present specification, specific features, structures, materials or characteristics can be combined in any one or more embodiments or examples in a suitable manner.

[0077] The above is only a specific implementation of the present application, but the protection scope of the present application is not limited thereto. Any person skilled in the art can easily think of changes or replacements within the technical scope disclosed by the present application, which should be covered within the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the protection scope of the claims. In addition, the principles and implementation modes of the present application are described by applying specific examples in the specification, and the above examples are only used to help understand the method and core idea of the present application, and the content of the specification should not be understood as limiting the present application.

Claims

1. A base, characterized in that, The base has intersecting first and second directions, and the base includes: At least two first forklift components are spaced apart in the first direction and both extend along the second direction, and each first forklift component has a first forklift groove formed therein; At least two second forklifts are spaced apart in the second direction and both extend along the first direction. Each second forklift has a second forklift groove formed therein, and the second forklift groove in each second forklift is interconnected with the first forklift groove in any of the first forklifts. The first sealing element is configured to block the first forklift slot; The second sealing element is configured to block the second forklift slot.

2. The base according to claim 1, characterized in that, The base also includes: At least two first support beams, each of the first forklift components being connected between two adjacent first support beams in the second direction; At least two second support beams, each of the second forklifts being connected between two adjacent second support beams in the first direction, and the second support beams being connected to the first support beam.

3. The base according to claim 2, characterized in that, Each of the second support beams has its two ends in the second direction connected between the ends of two adjacent first support beams on the same side in the first direction.

4. The base according to claim 2, characterized in that, Each of the first support beams is provided with a plurality of first forklift openings, and each first forklift opening is connected to the corresponding first forklift groove; Each of the second support beams is provided with multiple second forklift ports, and each second forklift port is connected to the corresponding second forklift slot.

5. The base according to claim 4, characterized in that, The first sealing member includes multiple first sealing plates, and the second sealing member includes multiple second sealing plates. Each first sealing plate is connected to the first support beam to seal the corresponding first forklift opening. Each of the second sealing plates is connected to the second support beam to block the corresponding second forklift opening.

6. The base according to claim 2, characterized in that, The base also includes two sets of fixing components, which are respectively connected to the opposite sides of the two first support beams in the second direction. Each set of fixing components includes at least two fixing members spaced apart along the first direction.

7. The base according to claim 2, characterized in that, The base also includes two grounding bars, which are respectively located on opposite sides of the two first support beams in the second direction.

8. The base according to claim 1, characterized in that, The first forklift component is provided with a first wire hole, which is connected to the first forklift groove, and the port of the first forklift component is configured to allow wires to pass through. and / or; The second forklift is provided with a second wire hole, which is connected to the second forklift slot, and the port of the second forklift is configured to allow wires to pass through.

9. The base according to claim 1, characterized in that, The cross-sectional shape of the first forklift and / or the second forklift is a closed quadrilateral.

10. The base according to claim 1, characterized in that, The first forklift and / or the second forklift are provided with weight reduction holes.

11. An energy storage cabinet, characterized in that, The energy storage cabinet includes: The base as described in any one of claims 1 to 10, the base having a first direction, a second direction, and a third direction that intersect each other in pairs; The cabinet includes a top plate and a bottom plate arranged opposite each other along the third direction, and the base is connected to the bottom plate.

12. The energy storage cabinet according to claim 11, characterized in that, The energy storage cabinet also includes: Multiple lifting rings are connected to the top plate and are spaced apart along the first direction and the second direction.