Frame structure of hydrogen production cabinet and hydrogen production cabinet
By adding support beams and cross beams to the hydrogen-making cabinet frame and installing assembly and isolation parts, the problems of insufficient stability and isolation effect of traditional frame structure are solved, and higher stability, space utilization and convenient maintenance are achieved.
Patent Information
- Application Number
- CN202422392038.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-29
- Publication Date
- 2025-09-02
- Estimated Expiration
- 2034-09-29
AI Technical Summary
The support beam layout of the traditional hydrogen-making cabinet frame structure is single, resulting in poor structural stability, inflexible space utilization, weak electromagnetic and power isolation effects, making it difficult to meet the needs of integration and modularity.
Supporting longitudinal beams and support beams are added in the rectangular frame, assembly parts and accommodation grooves are set to snap into isolation parts, forming a stable support structure, and the internal space of the cabinet is divided according to needs, and electromagnetically and power-free isolation is performed through isolation parts.
It improves the overall stability and service life of the cabinet, optimizes the space utilization rate, reduces the impact of electromagnetic and power interference on hydrogen production equipment, and makes maintenance and maintenance more convenient.
Smart Images

Figure CN223297828U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of hydrogen production equipment, in particular to a hydrogen production cabinet frame structure and a hydrogen production cabinet. Background Art
[0002] In the current hydrogen energy industry, hydrogen production cabinets are critical equipment, and their structural design is directly related to hydrogen production efficiency, safety, and operational stability. Traditional hydrogen production cabinet frames often utilize a simple rectangular design, with side beams forming the basic framework of the cabinet. However, this design has gradually exposed several issues in practical applications, limiting its performance improvement and widespread application.
[0003] First, the support beam layout of traditional hydrogen production cabinet frames is often relatively simple, relying solely on a simple combination of longitudinal and transverse beams for support. This design is prone to structural deformation or fatigue damage when subjected to heavy loads or during long-term operation, affecting the overall stability and service life of the cabinet. Second, the internal space division of traditional cabinets is not flexible enough, lacking effective isolation measures. During the hydrogen production process, different areas may generate different electromagnetic fields and power supply interference. If these interferences are not effectively isolated, they will directly affect the normal operation and precision control of the hydrogen production equipment, and may even pose a safety hazard.
[0004] Furthermore, with the continuous development of hydrogen energy technology, the requirements for the integration and modularization of hydrogen production cabinets are becoming increasingly stringent. Traditional cabinet frame structures have poor scalability and maintainability, making it difficult to meet the needs of future technology upgrades and equipment replacements. Utility Model Content
[0005] In order to overcome at least one of the above-mentioned defects of the prior art, the present invention provides a hydrogen production cabinet frame structure, which can solve the problems of low structural strength and weak electromagnetic and power isolation.
[0006] The technical solution adopted by the present invention to solve the problem is:
[0007] A hydrogen production cabinet frame structure includes: a rectangular frame, in which a accommodating cavity is provided; a support beam, which includes a support longitudinal beam and a support cross beam, and the support longitudinal beam is assembled in the accommodating cavity and arranged along the vertical edge of the rectangular frame, and the support cross beam is vertically connected to the support longitudinal beam; an assembly part, which is arranged on the support cross beam, and the assembly part is provided with an accommodating groove; an isolation part, one side of the isolation part is clamped in the accommodating groove, and the isolation part is located in the accommodating cavity to divide the accommodating cavity.
[0008] By adopting the above solution, by adding supporting longitudinal beams and supporting cross beams in the rectangular frame and forming a supporting structure, the load on the cabinet can be effectively dispersed and borne, reducing structural deformation and fatigue damage caused by long-term operation or bearing large loads, and significantly improving the overall stability and service life of the cabinet; by arranging assembly parts on the supporting cross beams and arranging receiving grooves on the assembly parts to clamp the isolation parts, different areas can be conveniently divided inside the cabinet according to actual needs, thereby improving space utilization; the setting of the isolation parts can effectively isolate the electromagnetic and power supply of different areas inside the cabinet, reducing the impact of electromagnetic field and power supply interference on the normal operation and precision control of the hydrogen production equipment.
[0009] Furthermore, the assembly part is provided with at least one accommodating groove. When there are more than two accommodating grooves, at least two openings of the accommodating grooves are in opposite directions, and each accommodating groove is equipped with one isolating member.
[0010] By adopting this solution, the diverse opening orientations of the receiving slots allow the spacers to be inserted at different angles and directions, thus providing more flexible division of the cabinet interior space. This design helps optimize space layout, improve space utilization, and make the layout of equipment inside the cabinet more compact and reasonable.
[0011] Furthermore, the accommodating groove is provided with one, and the assembly part includes a first plate, a second plate, a third plate, a fourth plate and a fifth plate that are integrally bent and formed, wherein the first plate and the fifth plate are assembled with the supporting beam, and the accommodating groove is enclosed by the second plate, the third plate and the fourth plate.
[0012] By adopting the above solution, the one-piece bent assembly has a stronger overall structure because there are no additional connectors between the parts, which can better resist external impacts and internal stress, thereby improving the overall stability and service life of the cabinet; through the precise enclosure of the second plate, the third plate and the fourth plate, an isolated space with a clear boundary can be formed.
[0013] Furthermore, there are two accommodating grooves, namely a first accommodating groove and a second accommodating groove, and the assembly parts include a first plate, a second plate, a third plate, a fourth plate, a fifth plate and a sixth plate that are integrally bent, wherein the first plate and the fifth plate are assembled with the supporting beam, the first accommodating groove is enclosed by the second plate, the third plate and the fourth plate, and the second accommodating groove is enclosed by the fourth plate, the fifth plate and the sixth plate.
[0014] By adopting the above solution, different isolation members are installed or clamped in the two slots respectively, thereby forming two or more independent working areas with different functions, which helps to reduce mutual electromagnetic coupling and power supply interference.
[0015] Furthermore, the ends of the first plate and the fifth plate are provided with assembly holes for assembly with the supporting beam, and a first fastener is passed through the assembly hole.
[0016] By adopting the above solution, the combination of the mounting holes and the first fasteners provides a reliable connection point between the assembly part and the support beam. By passing the fasteners through the mounting holes and fastening them to the support beams, they ensure that the assembly part remains securely in place within the cabinet, withstanding various loads and stresses, thereby enhancing the structural strength and stability of the entire cabinet. Furthermore, the pre-set mounting holes and fasteners simplify and speed up the assembly process. Operators simply insert the fasteners through the mounting holes and tighten them appropriately to complete the assembly of the assembly part and the support beam. This not only improves assembly efficiency, but also reduces the probability of errors during assembly and simplifies maintenance and replacement.
[0017] Furthermore, the fourth plate and the sixth plate are provided with opposite fixing holes, and second fasteners are passed through the fixing holes for fixing the two isolating members to the first accommodating groove and the second accommodating groove respectively.
[0018] This solution effectively prevents the isolation components from shifting or loosening during cabinet operation. This secure fixing method helps maintain the separation of the cabinet's internal space and ensures the independence of different areas. Furthermore, this secure fixing method reduces electromagnetic leakage and power supply interference caused by loose or displaced isolation components, further improving electromagnetic and power supply isolation between different areas within the cabinet and ensuring the stability and safety of the hydrogen production process.
[0019] Furthermore, the supporting beam is equipped with a plurality of supporting members parallel to the horizontal plane.
[0020] By adopting the above solution, the load borne by the supporting beam can be effectively dispersed, structural damage caused by excessive force at a single point can be avoided, and the lateral and longitudinal rigidity of the cabinet frame can be increased, making the cabinet more stable when subjected to external impact or internal stress. At the same time, it can serve as an installation platform for other equipment or components, such as pipes, valves, instruments, etc., so that the space inside the cabinet can be more reasonably utilized.
[0021] Furthermore, the thickness of the isolating member is less than or equal to the width of the accommodating groove, and the thickness of the isolating member is not less than 2 cm.
[0022] By adopting the above solution, the thickness of the isolator is designed to be less than or equal to the width of the accommodating groove, ensuring that the isolator can be smoothly placed in the accommodating groove and can remain stable in the accommodating groove, and will not be unable to be installed due to excessive size or cause shaking after installation; the thickness limit of the isolator mainly serves the purpose of achieving the expected effect, such as separating space, reducing electromagnetic interference and power supply interference, etc.
[0023] A hydrogen production cabinet comprises a plurality of door bodies and a hydrogen production cabinet frame structure, wherein at least one side of the rectangular frame is provided with an assembly opening, and the door body cover is arranged on the assembly opening.
[0024] By adopting the above solution, at least one side of the rectangular frame is provided with an assembly opening for installing and fixing various devices and components, and the internal accommodating cavity of the rectangular frame is separated by an isolating member, so that the devices and components have the advantage of classified installation, which can reduce electromagnetic interference between different devices.
[0025] Furthermore, the accommodating cavity is divided into at least two cavities by the isolation piece, and each of the cavities corresponds to at least one of the door bodies.
[0026] By adopting this solution, maintenance personnel can more conveniently inspect and maintain the interior of the cabinet. When they need to enter a specific area, they only need to open the corresponding door, without having to disassemble the entire cabinet or move other equipment.
[0027] In summary, the hydrogen production cabinet frame structure and hydrogen production cabinet provided by the present invention have the following technical effects:
[0028] 1. By adding supporting longitudinal beams and supporting cross beams to form a stable support structure, the load on the cabinet is effectively dispersed and borne, reducing structural deformation and fatigue damage caused by long-term operation or heavy loads. The optimized support beam layout enables the cabinet to withstand greater weight and more complex working conditions, providing a solid foundation for the stable operation of internal equipment, thereby significantly improving the overall stability and service life of the cabinet;
[0029] 2. By installing fittings on the support beams and providing slots on the fittings to receive spacers, the cabinet interior can be easily divided into different areas according to actual needs. This design improves space utilization, makes the cabinet interior layout more compact and reasonable, and supports spacers of different sizes and shapes, allowing the cabinet to be customized according to specific needs and meet diverse application scenarios.
[0030] 3. The installation of the isolation components effectively isolates different areas within the cabinet from electromagnetic and power sources, reducing the impact of electromagnetic field and power interference on the normal operation and precision control of the hydrogen production equipment. This is of great significance for improving the stability and safety of the hydrogen production process.
[0031] 4. The modular design and rational layout of the hydrogen production cabinet make maintenance and repair work more convenient. When internal equipment needs to be replaced or repaired, just open the corresponding door to operate, without disassembling the entire hydrogen production cabinet or moving other equipment. BRIEF DESCRIPTION OF THE DRAWINGS
[0032] Figure 1 This is a front perspective structural diagram of an embodiment of the utility model;
[0033] Figure 2 This is a side perspective structural diagram of an embodiment of the present utility model;
[0034] Figure 3 A schematic diagram of a longitudinal cross-sectional structure of an embodiment of the present invention from a side perspective;
[0035] Figure 4 for Figure 3 Enlarged view of region A;
[0036] Figure 5 This is a schematic diagram of the assembly structure of an embodiment of the utility model;
[0037] Figure 6 This is a schematic diagram of the three-dimensional structure of the hydrogen production cabinet according to an embodiment of the present utility model.
[0038] Among them, the meanings of the figure marks are as follows: 1. Rectangular frame; 11. Accommodating cavity; 12. Bottom frame; 13. Top frame; 14. Side frame; 15. Vertical support frame; 16. Horizontal support frame; 2. Support beam; 21. Support longitudinal beam; 22. Support cross beam; 3. Assembly part; 31. Accommodating groove; 311. First accommodating groove; 312. Second accommodating groove; 32. First plate; 321. Assembly hole; 33. Second plate; 34. Third plate; 35. Fourth plate; 351. Fixing hole; 36. Fifth plate; 37. Sixth plate; 4. Isolator; 5. First fastener; 6. Second fastener; 7. Support member; 8. Assembly opening; 9. Door body. DETAILED DESCRIPTION
[0039] For better understanding and implementation, the technical solutions in the embodiments of the present invention will be clearly and completely described and discussed below in conjunction with the drawings of the present invention. Obviously, what is described here is only a part of the examples of the present invention, not all the examples. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the present invention.
[0040] In order to facilitate the understanding of the embodiments of the present invention, the following will be further explained with reference to specific embodiments as examples in conjunction with the drawings, and each embodiment does not constitute a limitation on the embodiments of the present invention.
[0041] In the description of the present invention, it should be noted that the terms "upper", "lower", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", etc., indicating directions or positional relationships, are based on the directions or positional relationships shown in the accompanying drawings. They are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific direction, be constructed and operated in a specific direction. Therefore, they cannot be understood as limiting the present invention.
[0042] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as those commonly understood by those skilled in the art in the art of the present invention. The terms used herein in the specification of the present invention are only for the purpose of describing specific embodiments and are not intended to limit the present invention.
[0043] Example 1 of the present utility model is shown in FIG. Figures 1-6As shown, a hydrogen production cabinet frame structure is disclosed, including a rectangular frame 1, a support beam 2, an assembly part 3 and an isolation part 4, the rectangular frame 1 is provided with a accommodating cavity 11, the support beam 2 includes a support longitudinal beam 21 and a support cross beam 22, the support longitudinal beam 21 is assembled in the accommodating cavity 11, and is arranged along the vertical edges of the rectangular frame 1; preferably, the support longitudinal beam 21 is provided with four, corresponding to the four vertical edges of the rectangular frame 1, and the support cross beam 22 is vertically connected to the support longitudinal beam 21; optionally, there are more than two support cross beams 22, and the support cross beam 22 can be assembled at the top, bottom or middle of the support longitudinal beam 21; preferably, in order to improve the connection strength between the support cross beam 22 and the support longitudinal beam 21, the two can be integrally formed or welded; the assembly part 3 is provided on the support cross beam 22, and preferably, the two ends of the support cross beam 22 are respectively connected to two mutually The parallel supporting beams 22 are assembled and fixed; the assembly part 3 is provided with a receiving groove 31, and one side of the isolation part 4 is clamped in the receiving groove 31. The isolation part 4 is located in the receiving cavity 11 to divide the receiving cavity 11. By adding supporting longitudinal beams 21 and supporting beams 22 in the rectangular frame 1 and forming a supporting structure, the load on the cabinet can be effectively dispersed and borne, and the structural deformation and fatigue damage caused by long-term operation or bearing large loads can be reduced, and the overall stability and service life of the cabinet can be significantly improved; by arranging the assembly part 3 on the supporting beam 22 and arranging the receiving groove 31 on the assembly part 3 to clamp the isolation part 4, different areas can be conveniently divided inside the cabinet according to actual needs, so as to improve space utilization; the setting of the isolation part 4 can effectively isolate the electromagnetic and power supply of different areas inside the cabinet, reducing the impact of electromagnetic field and power supply interference on the normal operation and precision control of hydrogen production equipment.
[0044] In some embodiments, the rectangular frame 1 includes a bottom frame 12, a top frame 13 and a side frame 14. The side frame 14 is used to connect the bottom frame 12 and the top frame 13. There are at least four side frames 14. Support beams 22 can be optionally set on the inner sides of the bottom frame 12 and the top frame 13 to provide supporting force. In this embodiment 1, two vertical support frames 15 and two horizontal support frames 16 are additionally provided on two opposite sides of the accommodating cavity 11 for the reasonable assembly of different door bodies 9, and the support beams 22 are only provided on the inner sides of the two horizontal support frames 16.
[0045] It should be noted that the assembly 3 is provided with at least one receiving slot 31. When there are two or more receiving slots 31, at least two of the slots 31 have openings in opposite directions, and each receiving slot 31 is equipped with a spacer 4. This allows spacers 4 to be installed on both sides of the assembly 3. The diverse opening directions of the receiving slots 31 allow spacers 4 to be inserted at different angles and directions, thereby more flexibly dividing the cabinet's internal space. This design helps optimize spatial layout, improve space utilization, and make the layout of equipment within the cabinet more compact and reasonable.
[0046] In a specific embodiment, the accommodating groove 31 of the assembly part 3 is provided with one, so the assembly part 3 is arranged on the supporting beam 22 on the bottom frame 12 and the top frame 13, and the assembly part 3 includes a first plate 32, a second plate 33, a third plate 34, a fourth plate 35 and a fifth plate 36 that are integrally bent and formed, wherein the first plate 32 and the fifth plate 36 are assembled with the supporting beam 22, and the accommodating groove 31 is enclosed by the second plate 33, the third plate 34 and the fourth plate 35. The opening directions of the receiving grooves 31 of the two assembly parts 3 located on the bottom frame 12 and the top frame 13 are opposite to each other, so that a complete isolation part 4 can be accommodated between the two, thereby dividing the accommodating cavity 11 into two, and the ends of the first plate 32 and the fifth plate 36 are provided with assembly holes 321 assembled with the supporting beam 22, and the first fastener 5 is passed through the assembly hole 321 to complete the fixation of the assembly part 3, and the width of the receiving groove 31 is consistent with the thickness of the isolation part 4, so that the isolation part 4 can be snap-fitted and installed into the receiving groove 31 to achieve a stable fixation effect.
[0047] In this embodiment 1, the assembly parts 3 are respectively arranged on the supporting beams 22 on the bottom frame 12, the top frame 13 and the two lateral supporting frames 16, wherein a receiving groove 31 is provided for the assembly parts 3 located on the bottom frame 12 and the top frame 13, and the assembly parts 3 on the bottom frame 12 and the top frame 13 include a first plate 32, a second plate 33, a third plate 34, a fourth plate 35 and a fifth plate 36 that are integrally bent and formed, wherein the first plate 32 and the fifth plate 36 are assembled with the supporting beam 22, and the receiving groove 31 is enclosed by the second plate 33, the third plate 34 and the fourth plate 35. The assembly part 3 of the supporting beam 22 located on the transverse support frame 16 has two accommodating grooves 31, namely the first accommodating groove 311 and the second accommodating groove 312. Of course, the bottom frame 12 and the top frame 13 can also be replaced with an assembly part 3 with two accommodating grooves 31; the assembly part 3 on the transverse support frame 16 includes a first plate 32, a second plate 33, a third plate 34, a fourth plate 35, a fifth plate 36 and a sixth plate 37 that are bent into one piece, wherein the first plate 32 and the fifth plate 36 are assembled with the supporting beam 22, the first accommodating groove 311 is enclosed by the second plate 33, the third plate 34 and the fourth plate 35, the second accommodating groove 312 is enclosed by the fourth plate 35, the fifth plate 36 and the sixth plate 37, and the thickness of the isolation member 4 is less than the width of the second accommodating groove 312. Since the integrally bent assembly part 3 has no additional connectors between its parts, the overall structure is more robust, and it can better resist external impacts and internal stresses, thereby improving the overall stability and service life of the cabinet. Different isolation members 4 are respectively installed or clamped in the first receiving slot 311 and the second receiving slot 312, thereby forming two or more independent working areas with different functions, which helps to reduce electromagnetic coupling and power supply interference between them. Specifically, the first receiving slot 311 is opposite to the opening of the receiving slot 31 of the bottom frame 12, and an isolation member 4 is installed between the two. The second receiving slot 312 is opposite to the opening of the receiving slot 31 of the top frame 13, and an isolation member 4 is installed between the two. The ends of the first plate 32 and the fifth plate 36 are provided with assembly holes 321 for assembly with the support beam 22. The assembly holes 321 are penetrated by first fasteners 5, providing a reliable connection point between the assembly part 3 and the support beam 22. By passing the fasteners through the assembly holes 321 and fastening them to the support beams 22, the assembly member 3 is securely positioned within the cabinet, withstanding various loads and stresses, thereby enhancing the structural strength and stability of the entire cabinet. Furthermore, the pre-set assembly holes 321 and fasteners simplify and expedite the assembly process. Operators simply insert the fasteners through the assembly holes 321 and tighten them appropriately to complete the assembly of the assembly member 3 and the support beams 22. This not only improves assembly efficiency, but also reduces the likelihood of errors during assembly and simplifies maintenance and replacement.At the same time, the fourth plate 35 and the sixth plate 37 are provided with opposing fixing holes 351, each of which is penetrated by a second fastener 6 for securing the two isolators 4 to the first and second receiving slots 311 and 312, respectively. This effectively prevents displacement or loosening of the isolators 4 during cabinet operation. This secure fixing method helps maintain the separation of the cabinet's internal space and ensures the independence of different areas. Furthermore, the secure fixing of the isolators 4 helps reduce electromagnetic leakage and power supply interference caused by loosening or displacement of the isolators 4, further improving the electromagnetic and power supply isolation between different areas within the cabinet and ensuring the stability and safety of the hydrogen production process.
[0048] In order to improve the space utilization rate within the accommodating cavity 11, a plurality of support members 7 parallel to the horizontal plane can be assembled on the support beam 22. Equipment can be placed on the support member 7 to achieve a layered effect. At the same time, the load borne by the support beam 22 can be effectively dispersed to avoid structural damage caused by excessive force on a single point. The lateral and longitudinal rigidity of the cabinet frame is increased, making the cabinet more stable when subjected to external impact or internal stress. At the same time, it can serve as an installation platform for other equipment or components, such as pipes, valves, instruments, etc., so that the space inside the cabinet is more reasonably utilized. In this embodiment 1, the support member 7 is arranged on the support beam 22 of the bottom frame and the support beam 22 of the transverse support frame 16. The support member 7 is arranged parallel to the assembly part 3, and the end of the support member 7 is fixed to the support beam 22 by the first fastener 5.
[0049] In order to achieve the desired isolation effect, the thickness of the isolator 4 is not less than 2 cm in the above embodiment. The thickness of the isolator 4 is limited to achieve the desired effect, such as separating the space and reducing electromagnetic interference and power supply interference.
[0050] The present invention also relates to a hydrogen production cabinet, comprising a plurality of doors 9 and a hydrogen production cabinet frame structure. The rectangular frame 1 is provided with an assembly opening 8 on at least one side, and the door 9 is provided to cover the assembly opening 8. The rectangular frame 1 is provided with an assembly opening 8 on at least one side for installing and securing various devices and components. The internal accommodating chamber 11 of the rectangular frame 1 is separated by a partition 4, enabling the devices and components to be installed in a classified manner and reducing electromagnetic interference between different devices. The accommodating chamber 11 is divided into at least two cavities by the partition 4, each of which corresponds to at least one door 9. This allows maintenance personnel to more conveniently inspect and maintain the interior of the cabinet. When access to a specific area is required, only the corresponding door 9 needs to be opened, without having to disassemble the entire cabinet or move other equipment. In this embodiment 1, the rectangular frame 1 is provided with assembly openings 8 on all four sides, and each assembly opening 8 is provided with two doors 9. The door 9 can be a double-door structure or a single-door structure, which is not specifically limited in this embodiment 1.
[0051] It should be noted that, in the above embodiment, the first fixing member and the second fixing member are preferably screws and nuts, and the isolation member 4 is preferably an electromagnetic shielding metal plate.
[0052] In summary, the hydrogen production cabinet frame structure and hydrogen production cabinet provided by the present invention have the following technical effects:
[0053] 1. By adding support longitudinal beams 21 and support cross beams 22 to form a stable support structure, the load on the cabinet is effectively dispersed and supported, reducing structural deformation and fatigue damage caused by long-term operation or heavy loads. The optimized layout of support beams 2 enables the cabinet to withstand greater weight and more complex operating conditions, providing a solid foundation for the stable operation of internal equipment, thereby significantly improving the overall stability and service life of the cabinet.
[0054] 2. By installing the assembly member 3 on the support beam 22 and providing a receiving slot 31 on the assembly member 3 to receive the partition 4, the cabinet interior can be conveniently divided into different areas according to actual needs. This design improves space utilization, makes the cabinet interior layout more compact and reasonable, and can support partitions 4 of different sizes and shapes, allowing the cabinet to be customized according to specific needs and meet diverse application scenarios.
[0055] 3. The installation of the isolation element 4 effectively isolates different areas within the cabinet from electromagnetic and power sources, reducing the impact of electromagnetic field and power interference on the normal operation and precision control of the hydrogen production equipment. This is of great significance for improving the stability and safety of the hydrogen production process.
[0056] 4. The modular design and rational layout of the hydrogen production cabinet make maintenance and repair work more convenient. When internal equipment needs to be replaced or repaired, just open the corresponding door 9 to operate, without disassembling the entire hydrogen production cabinet or moving other equipment.
[0057] The technical means disclosed in the present invention are not limited to those disclosed in the above-mentioned embodiments, but also include technical solutions composed of any combination of the above-mentioned technical features. It should be noted that those skilled in the art can make various improvements and modifications without departing from the principles of the present invention, and such improvements and modifications are also considered to be within the scope of protection of the present invention.
Claims
1. A hydrogen production cabinet frame structure, characterized in that: include: A rectangular frame (1), wherein a receiving cavity (11) is provided in the rectangular frame (1); A support beam (2), the support beam (2) comprising a support longitudinal beam (21) and a support transverse beam (22), the support longitudinal beam (21) being assembled in the accommodating cavity (11) and arranged along a vertical edge of the rectangular frame (1), and the support transverse beam (22) being vertically connected to the support longitudinal beam (21); An assembly part (3), the assembly part (3) being arranged on the supporting beam (22), and the assembly part (3) being provided with a receiving groove (31); An isolating member (4), one side of which is clamped in the accommodating groove (31), and the isolating member (4) is located in the accommodating cavity (11) to divide the accommodating cavity (11).
2. A hydrogen production cabinet frame structure according to claim 1, characterized in that: The assembly part (3) is provided with at least one accommodating groove (31). When there are two or more accommodating grooves (31), at least two openings of the accommodating grooves (31) are in opposite directions, and each accommodating groove (31) is equipped with one isolating part (4).
3. A hydrogen production cabinet frame structure according to claim 2, characterized in that: The receiving groove (31) is provided with one, and the assembly part (3) includes a first plate (32), a second plate (33), a third plate (34), a fourth plate (35) and a fifth plate (36) that are integrally bent and formed, wherein the first plate (32) and the fifth plate (36) are assembled with the supporting beam (22), and the receiving groove (31) is enclosed by the second plate (33), the third plate (34) and the fourth plate (35).
4. A hydrogen production cabinet frame structure according to claim 2, characterized in that: The receiving grooves (31) are provided with two, namely a first receiving groove (311) and a second receiving groove (312), and the assembly part (3) includes a first plate (32), a second plate (33), a third plate (34), a fourth plate (35), a fifth plate (36) and a sixth plate (37) which are integrally bent and formed, wherein the first plate (32) and the fifth plate (36) are assembled with the supporting beam (22), the first receiving groove (311) is enclosed by the second plate (33), the third plate (34) and the fourth plate (35), and the second receiving groove (312) is enclosed by the fourth plate (35), the fifth plate (36) and the sixth plate (37).
5. A hydrogen production cabinet frame structure according to claim 3 or 4, characterized in that: The ends of the first plate (32) and the fifth plate (36) are provided with assembly holes (321) for assembly with the supporting beam (22), and a first fastener (5) is passed through the assembly hole (321).
6. A hydrogen production cabinet frame structure according to claim 4, characterized in that: The fourth plate (35) and the sixth plate (37) are provided with opposite fixing holes (351), and second fasteners (6) are passed through the fixing holes (351) for fixing the two isolation members (4) to the first accommodating groove (311) and the second accommodating groove (312), respectively.
7. A hydrogen production cabinet frame structure according to claim 1, characterized in that: The supporting crossbeam (22) is equipped with a plurality of supporting members (7) parallel to the horizontal plane.
8. A hydrogen production cabinet frame structure according to claim 1, characterized in that: The thickness of the isolating member (4) is less than or equal to the width of the accommodating groove (31), and the thickness of the isolating member (4) is not less than 2 cm.
9. A hydrogen production cabinet, characterized in that: A hydrogen production cabinet frame structure comprising a plurality of door bodies (9) and any one of claims 1 to 8, wherein at least one side of the rectangular frame (1) is provided with an assembly opening (8), and the door body (9) is covered on the assembly opening (8).
10. A hydrogen production cabinet according to claim 9, characterized in that: The accommodating cavity (11) is divided into at least two cavities by the isolation member (4), and each cavity corresponds to at least one door body (9).