Frame structure
By combining the sliding heat dissipation components with the guide rail and the detachable positioning parts, the problems of difficult fan assembly installation and inconvenient maintenance are solved, realizing flexible heat dissipation and convenient maintenance of the equipment, and improving the performance and stability of the air compressor frame structure.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-03
- Publication Date
- 2026-04-14
AI Technical Summary
Existing fan assembly installation methods suffer from problems such as difficulty in removal, poor flexibility, difficulty in fine-tuning, and welding stress affecting equipment stability, failing to meet the requirements of dynamic heat dissipation layouts and being inconvenient to maintain.
The design incorporates a sliding heat dissipation component and guide rail with a detachable positioning element, providing dedicated storage space and flexible adjustment capabilities. Combined with the storage cavity for heat dissipation, it enables convenient maintenance and stable operation of the equipment.
It enables flexible adjustment and convenient maintenance of heat dissipation components, improves the operational reliability and service life of the equipment, meets dynamic heat dissipation requirements, and reduces maintenance difficulty and equipment failure risk.
Smart Images

Figure CN224120355U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of sheet metal structure technology, and in particular to a frame structure. Background Technology
[0002] In the field of sheet metal structures for air compressors, the installation and positioning of fan assemblies has always been a key technical aspect. Existing fan assembly installation methods typically involve directly placing the fan assembly into a positioning slot and then fixing it by welding. This traditional installation method has several drawbacks: Firstly, welding creates a permanent connection, making disassembly extremely difficult and time-consuming if the fan assembly malfunctions and requires repair or replacement. This can even damage other components such as the frame. Secondly, welding lacks flexibility, making it difficult to fine-tune the fan assembly's position according to actual operating conditions. This fails to meet the needs of operating conditions requiring dynamic adjustments to the heat dissipation layout. Furthermore, the stress generated during welding may adversely affect the structural stability of the fan assembly and frame over long-term use, reducing the equipment's lifespan. Therefore, a more reasonable, flexible, and easy-to-maintain fan assembly installation and positioning structure is urgently needed to solve the problems of existing technologies and improve the reliability and practicality of the air compressor frame structure. Utility Model Content
[0003] This utility model aims to solve at least one of the technical problems existing in the prior art.
[0004] This utility model provides a frame structure, including: a frame, two guide rails, multiple first positioning components, and a heat dissipation assembly. The frame has a positioning groove, and the two guide rails are respectively located on both sides of the positioning groove. The heat dissipation assembly is slidably connected to the two guide rails and is located within the positioning groove. Each of the two guide rails has a first positioning hole module, and the heat dissipation assembly has multiple first through holes. Multiple first positioning components pass through the multiple first through holes and are detachably connected to the two sets of first positioning hole modules. The multiple first positioning components are used to position the heat dissipation assembly on the two guide rails. The frame also has a storage cavity located below the positioning groove. The heat dissipation assembly is used to dissipate heat from the storage cavity. Beneficial effects: The positioning slot provides dedicated storage space for the heat dissipation components, achieving efficient utilization of the rack space and making the overall structure more compact; the sliding connection between the heat dissipation components and the guide rail, as well as the detachable design of the first positioning component and the first positioning hole module, not only facilitates flexible adjustment of the position of the heat dissipation components to meet the dynamic changes in heat dissipation layout under different working conditions, but also allows for easy disassembly of the heat dissipation components for maintenance in case of equipment failure, greatly improving the convenience of equipment maintenance and operational reliability; the storage cavity, located below the positioning slot, is used to store the air compressor and related mechanical parts, creating a stable operating space for the equipment; at the same time, the heat dissipation components directly dissipate heat from the storage cavity, which can quickly reduce the temperature inside the storage cavity, effectively reducing equipment failures caused by overheating, ensuring the stable operation of core components such as the air compressor, and extending the service life of the equipment. This design, which organically combines the heat dissipation components, positioning slots, and storage cavity, comprehensively improves the performance of the air compressor frame structure from space optimization, flexible installation, convenient maintenance to efficient heat dissipation, providing a strong guarantee for the stable operation and long-term use of the equipment.
[0005] Furthermore, the frame includes multiple support columns, a top seat, a base, and a sealing plate assembly. The top seat includes multiple first limiting grooves, and the base includes multiple second limiting grooves. The multiple first limiting grooves are respectively connected to the multiple second limiting grooves through the multiple support columns. The multiple support columns and the base enclose the storage cavity. The positioning groove is located below the top seat. The sealing plate assembly surrounds the periphery of the storage cavity, and the multiple support columns are respectively connected to the sealing plate assembly.
[0006] Furthermore, the support column is provided with a first extension and a second extension at both ends; the first extension engages with the first limiting groove; and the second extension engages with the second limiting groove.
[0007] Furthermore, the sealing plate assembly also includes multiple sealing plates, inspection plate modules, and heat sinks. The multiple sealing plates, inspection plate modules, and heat sinks are distributed between two adjacent support columns. The sealing plates are provided with multiple second through holes, and the support columns are provided with through hole modules. Each of the multiple second through holes has a built-in second positioning element, and the multiple second through holes are riveted to the through hole modules through the multiple second positioning elements.
[0008] Furthermore, the frame structure also includes multiple connectors and locking bars. The maintenance plate module includes multiple maintenance plates, each of which is hinged to an adjacent support column via multiple connectors. The locking bars are fixedly disposed between the top seat and the base, and each of the maintenance plates is locked to the locking bars.
[0009] Furthermore, the frame structure also includes a heat dissipation panel, which is mounted on the positioning groove and located above the heat dissipation component; the heat dissipation panel has multiple sets of arrayed heat dissipation holes.
[0010] Furthermore, the heat dissipation panel is provided with reinforcing steel bars, which are located between two adjacent sets of array-type heat dissipation holes.
[0011] Furthermore, the heat dissipation assembly includes an air cooler and a support frame, the support frame being slidably connected to the two guide rails and located within the positioning groove; a plurality of first through holes are distributed on the support frame; and the air cooler is disposed on the support frame.
[0012] Furthermore, an air-gathering ring is provided on the supporting frame, and the air cooler is located on the air-gathering ring with the air outlet facing the receiving cavity.
[0013] Furthermore, the support frame is also provided with an exhaust hole, and the frame is provided with a groove, which provides space for the exhaust hole.
[0014] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description
[0015] The above and / or additional aspects and advantages of this utility model will become apparent and readily understood from the description of the embodiments taken in conjunction with the following drawings, in which:
[0016] Figure 1 This is a first partial structural diagram of a frame structure according to the present invention;
[0017] Figure 2This is a second partial structural diagram of a frame structure according to the present invention;
[0018] Figure 3 This is a third partial structural diagram of a frame structure according to the present invention;
[0019] Figure 4 This is a schematic diagram of the first overall structure of a frame structure according to the present invention;
[0020] Figure 5 This is a fourth partial structural diagram of a frame structure according to the present invention;
[0021] Figure 6 This is a schematic diagram of the first structure of a support column in a frame structure according to the present invention;
[0022] Figure 7 This is a second structural schematic diagram of a support column in a frame structure according to the present invention;
[0023] Figure 8 This is a fifth partial structural diagram of a frame structure according to the present invention;
[0024] Figure 9 This is a partial structural schematic diagram of a load-bearing frame of a frame structure according to the present invention;
[0025] Figure 10 This is a structural schematic diagram of a load-bearing frame of the frame structure of this utility model;
[0026] Figure 11 This is a second overall structural diagram of a frame structure according to the present invention;
[0027] In the attached diagram: 1-Frame; 10-Locking bar; 11-Support column; 111-First extension; 112-Second extension; 113-Through hole module; 12-Top seat; 121-First limiting groove; 13-Base; 131-Second limiting groove; 14-Sealing plate assembly; 15-Heat dissipation panel; 151-Arrayed heat dissipation holes; 152-Reinforcing steel bar; 16-Groove; 2-Guide rail; 3-Heat dissipation assembly; 31-First through hole; 32-Bearing frame; 321-Air concentrator ring; 322-Exhaust hole; 4-Positioning groove; 5-Receiving cavity; 6-Sealing plate; 7-Inspection plate module; 71-Inspection plate; 8-Heat dissipation plate; 9-Connector. Detailed Implementation
[0028] The embodiments of the present invention are described in detail below. Examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout.
[0029] like Figure 1-11As shown, a frame structure includes: a frame 1, two guide rails 2, multiple first positioning components and a heat dissipation assembly 3. The frame 1 has a positioning groove 4, and the two guide rails 2 are respectively located on both sides of the positioning groove 4. The heat dissipation assembly 3 is slidably connected to the two guide rails 2 and is located in the positioning groove 4. The positioning groove 4 provides storage space for the heat dissipation assembly 3, making the space utilization of the frame 1 more efficient and the structure more compact.
[0030] Both guide rails 2 are provided with first positioning hole modules, and the heat dissipation component 3 is provided with multiple first through holes 31. Multiple first positioning components pass through multiple first through holes 31 and are detachably connected to the two sets of first positioning hole modules.
[0031] In this embodiment, when the position of the heat dissipation component 3 needs to be adjusted, the multiple first positioning parts can be removed from the multiple first through holes 31 and the two sets of first positioning hole modules, and the heat dissipation component 3 can be slid along the two guide rails 2. The position of the heat dissipation component 3 can be flexibly adjusted according to the actual operating conditions, which can adapt to the dynamic adjustment requirements of the heat dissipation layout under different working conditions; or when the heat dissipation component 3 needs to be repaired, the heat dissipation can be easily disassembled, which improves the reliability of equipment operation.
[0032] Multiple first positioning elements are used to position the heat dissipation assembly 3 on the two guide rails 2;
[0033] The frame 1 is also provided with a storage cavity 5, which is located below the positioning groove 4;
[0034] The heat dissipation component 3 is used to dissipate heat from the storage cavity 5, which can effectively reduce the temperature inside the storage cavity 5, reduce the failure of some equipment inside the storage cavity 5 due to overheating, such as the air compressor, and improve the operational stability of the equipment.
[0035] In this embodiment, the storage cavity 5 is used to place the air compressor and some related mechanical parts, providing a relatively stable operating storage space for the equipment;
[0036] In this embodiment, the positioning slot 4 provides dedicated storage space for the heat dissipation component 3, achieving efficient utilization of the space in the frame 1 and making the overall structure more compact. The sliding connection between the heat dissipation component 3 and the guide rail 2, as well as the detachable design of the first positioning component and the first positioning hole module, not only facilitates flexible adjustment of the position of the heat dissipation component 3 to meet the dynamic changes in heat dissipation layout under different working conditions, but also allows for easy disassembly of the heat dissipation component 3 for maintenance when equipment malfunctions, greatly improving the convenience of equipment maintenance and operational reliability. The storage cavity 5 is located below the positioning slot 4 to store the air compressor and related mechanical parts, creating a stable operating space for the equipment. At the same time, the heat dissipation component 3 directly dissipates heat from the storage cavity 5, which can quickly reduce the temperature inside the storage cavity 5, effectively reducing equipment failures caused by overheating, ensuring the stable operation of core components such as the air compressor, and extending the service life of the equipment. This design, which organically combines the heat dissipation component 3, the positioning slot 4, and the storage cavity 5, comprehensively improves the performance of the air compressor frame structure from space optimization, flexible installation, convenient maintenance to efficient heat dissipation, providing a strong guarantee for the stable operation and long-term use of the equipment.
[0037] The frame 1 includes multiple support columns 11, a top seat 12, a base 13, and a sealing plate assembly 14.
[0038] The top seat 12 includes a plurality of first limiting grooves 121, and the base 13 includes a plurality of second limiting grooves 131.
[0039] In this embodiment, the multiple first limiting grooves 121 and multiple second limiting grooves 131 provide positioning space for the support column 11. When assembling the frame 1, the support column 11 can be inserted into the first limiting groove 121 and the second limiting groove 131 respectively, which reduces the installation difficulty and improves the installation efficiency. At the same time, this modular installation method is also easy to disassemble and transport. When the equipment needs to be moved or repaired, it can be quickly disassembled and assembled.
[0040] Multiple first limiting grooves 121 are connected to multiple second limiting grooves 131 by multiple support columns 11. This structure constructs a stable three-dimensional frame. The support columns 11 are vertically connected to the top seat 12 and the base 13, which can evenly distribute the pressure from above and the sides, effectively enhancing the overall load-bearing capacity and deformation resistance of the frame 1. Multiple support columns 11, the top seat 12 and the base 13 enclose the storage cavity 5, providing a regular storage space for the air compressor and related equipment components. The positioning groove 4 is located below the top seat 12. The sealing plate assembly 14 surrounds the periphery of the storage cavity 5. Multiple support columns are respectively connected to the sealing plate assembly 14.
[0041] In this embodiment, the arrangement of multiple first limiting grooves 121 and second limiting grooves 131 provides positioning space for the support column 11, making the assembly of the frame 1 simple and efficient. During installation, the support column 11 only needs to be snapped into the corresponding first limiting groove 121 and second limiting groove 131, reducing the installation difficulty of the support column 11. At the same time, the modular design facilitates disassembly and transportation, and can be quickly disassembled and reassembled when the equipment is transferred or repaired. The support column 11 is vertically connected to the top seat 12 and the base 13, forming a stable three-dimensional frame that can evenly distribute pressure from all directions, significantly enhancing the load-bearing capacity and deformation resistance of the frame 1, and ensuring the stability of the equipment during operation. In addition, multiple support columns 11, top seat 12 and base 13 enclose a regular storage cavity 5, and the sealing plate assembly 14 is arranged around the periphery of the storage cavity 5, providing dedicated storage space for the air compressor and related equipment components, optimizing the internal layout of the equipment, improving space utilization, and creating favorable conditions for stable operation of the equipment, thereby improving the practicality and reliability of the frame 1 structure.
[0042] The support column 11 has a first extension 111 and a second extension 112 at its two ends; the first extension 111 is engaged with the first limiting groove 121; and the second extension 112 is engaged with the second limiting groove 131.
[0043] In this embodiment, during installation, the first extension 111 and the second extension 112 of the support column 11 are simply inserted into the first limiting groove 121 and the second limiting groove 131, respectively, which increases the contact area between the support column 11 and the top seat 12 and the base 13, so that the pressure is more evenly distributed throughout the entire frame 1 structure, thereby enhancing the overall structural strength and load-bearing capacity of the frame 1.
[0044] The sealing plate assembly 14 also includes multiple sealing plates 6, a maintenance plate module 7, and a heat sink 8, with the multiple sealing plates, the maintenance plate module 7, and the heat sink 8 distributed between adjacent support columns 11.
[0045] In this embodiment, these plates are tightly integrated with multiple support columns 11 to form a stable structure that supports each other. Each plate enhances the connection strength between the support columns 11 to a certain extent, effectively dispersing the pressure and vibration generated during equipment operation, improving the overall deformation resistance of the frame 1, and ensuring the stable operation of the equipment. The sealing plate 6 has multiple second through holes, and each support column 11 has a through hole module 113. Each second through hole has a built-in second positioning element, and the multiple second through holes are riveted to the multiple through hole modules 113 through the multiple second positioning elements.
[0046] In this embodiment, this connection method tightly integrates multiple sealing plates 6 with multiple support columns 11, enhancing the overall structural stability of the frame 1. During assembly, multiple second positioning parts are simply riveted to the through-hole modules 113 of the support columns 11 through multiple second through holes. The operation is simple and the connection is reliable, reducing assembly difficulty and improving production efficiency. This riveting connection method not only effectively improves the coordinated stress-bearing performance between the components of the frame 1, enabling the overall structure to evenly distribute stress when subjected to pressure and vibration, thus enhancing the stability and reliability of the frame 1, but also provides good disassembly. When a support column 11 is damaged, it can be quickly disassembled and replaced. The operation process is simple and convenient, and will not affect other components, providing convenience for daily maintenance and upgrades of the equipment.
[0047] In this embodiment, in terms of structural design, multiple sealing plates and heat dissipation plates 8 are distributed between adjacent support columns 11, closely cooperating with the support columns 11 to form a stable three-dimensional frame structure. This mutually supporting layout effectively enhances the connection strength between the support columns 11, evenly disperses the pressure and vibration generated during equipment operation, significantly improves the overall frame's resistance to deformation, and lays a solid foundation for stable equipment operation. The maintenance plate module 7 provides a convenient maintenance access for equipment maintenance. The heat dissipation is discharged into the storage cavity 5 through the heat dissipation holes on the heat dissipation plate 8, ensuring that the equipment is within a reasonable operating temperature range. In terms of connection method, the riveting connection is not only easy to operate and reliable, but also reduces the assembly difficulty of the support columns 11 and enhances the overall stability of the frame 1. At the same time, the riveting connection design has good disassembly, and the support column 11 can be quickly replaced when damaged without affecting other components, facilitating the daily maintenance and upgrading of the equipment, and comprehensively improving the practicality and reliability of the equipment.
[0048] The frame structure also includes multiple connectors 9 and locking bars 10. The maintenance plate module 7 includes multiple maintenance plates 71, with a total number of three. Each maintenance plate 71 is hinged to an adjacent support column via the multiple connectors 9. This connection method allows the maintenance plates 71 to be opened and closed flexibly, dividing the maintenance plate module 7 into multiple independent maintenance plates 71, which are hinged to adjacent support columns 11 via connectors 9. In confined spaces, operators can flexibly open one or more maintenance plates 71 according to actual needs. 1. Accessing the components requiring maintenance within the storage cavity 5 improves the flexibility of maintenance operations, reduces maintenance difficulty, shortens maintenance time, and improves equipment maintenance efficiency; the locking bar 10 is fixedly installed between the top seat 12 and the base 13, and each of the maintenance plates 71 is locked and connected to the locking bar 10. When it is necessary to maintain the air compressor and related mechanical components in the storage cavity 5, the operator only needs to unlock the connection between the maintenance plate 71 and the locking bar 10 to open the maintenance plate 71 around the hinge point;
[0049] In this embodiment, the maintenance plate module 7 is divided into multiple independent maintenance plates 71, which are hinged to the support column 11 by multiple connectors 9. This allows multiple maintenance plates 71 to be opened and closed flexibly. In narrow spaces, operators can open some maintenance plates 71 as needed to access equipment components, reducing maintenance difficulty, shortening maintenance time, and significantly improving equipment maintenance efficiency. At the same time, the locking bar 10 is fixed between the top seat 12 and the base 13 and locked to each maintenance plate 71. During maintenance, only unlocking is required to open the maintenance plate 71, making the operation simple. During operation, it also ensures the stability of the maintenance plates 71, enhances the overall structural strength of the frame 1, and ensures the safe and reliable operation of the equipment.
[0050] The frame structure also includes a heat dissipation panel 15, which covers the positioning groove 4 and is located above the heat dissipation component 3; the heat dissipation panel 15 has multiple sets of arrayed heat dissipation holes 151.
[0051] In this embodiment, the design of multiple array-type heat dissipation holes 151 increases the heat dissipation area of the overall mechanism. At the same time, the heat dissipation panel 15 can prevent dust, debris and other objects from entering the positioning slot 4 and heat dissipation component 3, reducing damage to the equipment caused by external factors and extending the service life of the equipment. In addition, the adaptation design of the heat dissipation panel 15 and the frame structure not only ensures the heat dissipation function, but also does not affect the stability of the overall structure, providing a reliable guarantee for the stable operation of the equipment, and combining practicality and reliability.
[0052] The heat dissipation panel 15 is provided with a reinforcing steel bar 152, which is located between two adjacent sets of array-type heat dissipation holes 151.
[0053] In this embodiment, by setting reinforcing steel bars 152 on the heat dissipation panel 15, the structural strength and deformation resistance of the panel can be effectively enhanced; it can resist equipment operation vibration and external pressure, prevent the panel from denting or breaking, ensure the stable operation of the heat dissipation system, extend the service life of the heat dissipation panel 15, and ensure the reliability of the equipment's heat dissipation performance.
[0054] The heat dissipation assembly 3 includes an air cooler and a support frame 32, the support frame 32 being slidably connected to the two guide rails 2.
[0055] The support frame 32 is located in the positioning groove 4; a plurality of first through holes 31 are distributed on the support frame 32, and a plurality of first positioning members pass through the plurality of first through holes 31 and two sets of first positioning hole modules to position the support frame 32 on the two guide rails 2; the air cooler is provided on the support frame 32.
[0056] In this embodiment, during installation, the support frame 32 only needs to be slid along the guide rail 2 to the predetermined position, and then the support frame 32 is fixed by multiple first positioning members passing through multiple first through holes 31 on the support frame 32 and two sets of first positioning hole modules on the guide rail 2. The operation is simple and efficient. When the heat dissipation component 3 malfunctions or needs cleaning and maintenance, it can be quickly disassembled, which can effectively shorten the maintenance time, reduce the maintenance difficulty and cost, and improve the maintainability of the equipment. The support frame 32 is positioned on the guide rail 2 by multiple first positioning members, which ensures that the air cooler is installed in an accurate position. This positioning method enhances the connection strength between the heat dissipation component 3 and the overall structure, ensures the stable operation of the air cooler, and thus ensures the reliability of the heat dissipation system, providing strong support for the stable operation of the equipment. The support frame 32 is located on the positioning groove 4 and the air cooler is set on the support frame 32. This layout design allows the air cooler to be closer to the heat source and optimizes the heat dissipation path. The airflow generated by the air cooler during operation can directly act on the air compressor and related mechanical components in the receiving cavity 5, quickly remove heat, improve heat dissipation efficiency, and effectively reduce the operating temperature of the equipment.
[0057] The supporting frame 32 is provided with an air gathering ring 321, the air cooler is provided on the air gathering ring 321, and the air outlet of the air cooler faces the receiving cavity 5;
[0058] In this embodiment, by opening a concentrator ring 321 in the support frame 32 and reasonably installing the air cooler, the concentrator ring 321 is used to gather the airflow, enhance the concentration and pressure of the air cooler's exhaust, and make the airflow blow directly into the receiving cavity 5, quickly remove the heat inside the cavity, significantly improve the heat dissipation efficiency, effectively avoid the equipment's performance degradation or failure due to overheating, ensure the stable operation of the equipment, and reduce maintenance costs and downtime.
[0059] The support frame 32 is also provided with an exhaust hole 322, and the frame 1 is provided with a groove 16, which provides a space for the exhaust hole 322.
[0060] In this embodiment, by creating a groove 16 on the frame 1 to provide dedicated space for the exhaust port 322 of the air cooler, the air cooler and the frame 1 structure are more closely matched, effectively avoiding interference between the exhaust port 322 and the frame 1. At the same time, the regular layout optimizes the utilization of the internal space of the equipment, ensures smooth exhaust of the air cooler, guarantees the heat dissipation effect, and improves the stability and reliability of the equipment operation.
[0061] The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and should not be construed as limiting the present invention.
[0062] In the description of this utility model, it should be understood that the directional descriptions, such as up, down, front, back, left, right, etc., indicate the directional or positional relationship based on the directional or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0063] In the description of this utility model, unless otherwise explicitly defined, terms such as "setting," "installation," and "connection" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this utility model in conjunction with the specific content of the technical solution.
[0064] The embodiments of this utility model will be described below with reference to the figures.
[0065] The preferred embodiments of the present invention have been described in detail above, but the invention is not limited to the embodiments described. Those skilled in the art can make various equivalent modifications or substitutions without departing from the spirit of the present invention, and these equivalent modifications or substitutions are all included within the scope defined by the claims of the present invention.
Claims
1. A frame structure, characterized in that, include: The device comprises a frame, two guide rails, multiple first positioning components, and a heat dissipation assembly. The frame has a positioning groove, the two guide rails are respectively located on both sides of the positioning groove, and the heat dissipation assembly is slidably connected to the two guide rails and is located within the positioning groove. Both guide rails are provided with first positioning hole modules, and the heat dissipation assembly is provided with multiple first through holes. Multiple first positioning components pass through multiple first through holes and are detachably connected to the two sets of first positioning hole modules. The plurality of first positioning elements are used to position the heat dissipation assembly on the two guide rails; The frame is also provided with a storage cavity, which is located below the positioning groove; The heat dissipation component is used to dissipate heat from the storage cavity.
2. The frame structure as described in claim 1, characterized in that, The frame includes multiple support columns, a top mount, a base, and a sealing plate assembly. The top seat includes multiple first limiting grooves, and the base includes multiple second limiting grooves. The multiple first limiting grooves are respectively connected to the multiple second limiting grooves through multiple support columns. The multiple support columns and the base enclose the storage cavity. The positioning groove is located below the top seat. The sealing plate assembly surrounds the periphery of the storage cavity. The multiple support columns are respectively connected to the sealing plate assembly.
3. A frame structure as described in claim 2, characterized in that, The support column is provided with a first extension and a second extension at both ends; the first extension is engaged with the first limiting groove; the second extension is engaged with the second limiting groove.
4. A frame structure as described in claim 2, characterized in that, The sealing plate assembly also includes multiple sealing plates, inspection plate modules, and heat sinks. The multiple sealing plates, inspection plate modules, and heat sinks are distributed between two adjacent support columns. The sealing plates are provided with multiple second through holes, and the support columns are provided with through hole modules. Each of the multiple second through holes has a built-in second positioning element. The multiple second through holes are riveted to the through hole modules through the multiple second positioning elements.
5. A frame structure as described in claim 4, characterized in that, The frame structure also includes multiple connectors and locking bars. The maintenance plate module includes multiple maintenance plates, each of which is hinged to an adjacent support column through multiple connectors. The locking bars are fixedly disposed between the top seat and the base, and each of the maintenance plates is locked to the locking bars.
6. A frame structure as described in claim 1, characterized in that, The frame structure also includes a heat dissipation panel, which is mounted on the positioning groove and located above the heat dissipation component; the heat dissipation panel has multiple sets of arrayed heat dissipation holes.
7. A frame structure as described in claim 6, characterized in that, The heat dissipation panel is provided with reinforcing steel bars, which are located between two adjacent sets of array-type heat dissipation holes.
8. A frame structure as described in claim 1, characterized in that, The heat dissipation assembly includes an air cooler and a support frame. The support frame is slidably connected to the two guide rails and is located in the positioning groove. A plurality of first through holes are distributed on the support frame. The air cooler is located on the support frame.
9. A frame structure as described in claim 8, characterized in that, An air-gathering ring is provided on the supporting frame, and the air cooler is located on the air-gathering ring with the air outlet facing the receiving cavity.
10. A frame structure as described in claim 8, characterized in that, The support frame is also provided with an exhaust hole, and the frame is provided with a groove, which provides space for the exhaust hole.