Modular storage server

The modular design of the storage server solves the problem of difficult maintenance and assembly of existing storage servers for outdoor operations, achieving rapid assembly and energy-saving protection.

CN120600061BActive Publication Date: 2026-01-23中科云达(北京)科技有限公司
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Patent Information

Application Number
CN202510651021.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-12-04
Publication Date
2026-01-23
Estimated Expiration
2044-12-04

AI Technical Summary

Technical Problem

Existing storage servers are not easy to quickly inspect and replace components when used outdoors, and peripheral devices need to be installed one by one, which increases the complexity of the operation.

Method used

A modular storage server was designed, including a storage chassis, a power supply chassis, and a heat dissipation mechanism. It can be quickly assembled through modular combination, and the combination of photovoltaic modules and heat dissipation mechanism can meet the needs of outdoor use and provide energy saving and protection.

Benefits of technology

It enables modular assembly of storage servers, improves the convenience and stability of outdoor operations, enhances energy efficiency, and provides good protection when not in operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application provides a modular storage server, and relates to the technical field of storage servers, which comprises a storage case and a heat dissipation mechanism, a power supply case is installed on one side of the storage case, a storage body is arranged in the storage case, the storage body is installed on the top of a guide component, the guide component is installed in the storage case, and is used for driving the storage body to enter and exit the storage case, a storage battery for supplying power to the storage body is arranged in the power supply case, the storage battery is arranged in a placing component, the placing component is slidingly installed in the power supply case, an outward extension driving component is further assembled in the power supply case, the outward extension driving component is assembled and connected with the placing component, and is used for clamping and / or driving the storage battery to enter and exit the power supply case, a receiving groove is arranged on the top of the power supply case, and a photovoltaic component is assembled in the receiving groove; the storage server provided by the application can meet the use requirement during outdoor carrying of the equipment, and is convenient for maintenance and maintenance.
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Description

Technical Field

[0001] This application is a divisional application of the invention application filed on December 4, 2024, with Chinese application number 2024117656435 and title "A Modular Portable Storage Server". Background Technology

[0002] A storage server is a computer server used to store and protect data. It provides a large amount of storage space and can store large amounts of data, including files, databases, applications, etc. Storage servers typically feature high reliability, high performance, scalability, and security to meet the needs of businesses of different sizes and types.

[0003] Storage servers typically consist of two parts: hardware and software. The hardware includes storage devices, servers, and network connectivity devices, while the software includes the operating system, storage management software, and data backup and recovery software. Storage servers can employ different storage technologies, such as hard disk drives (HDDs), solid-state drives (SSDs), network attached storage (NAS), and storage area networks (SANs).

[0004] Storage servers play a vital role in enterprises, helping them centrally manage and protect data, improve data availability and security, and reduce storage costs and management complexity. With the continuous development of technologies such as big data and cloud computing, the application scenarios for storage servers are becoming increasingly widespread, making them an indispensable part of enterprise IT infrastructure.

[0005] However, existing storage servers generally adopt an integrated, one-piece design, which is not easy to assemble and combine quickly. When used outdoors, they have the following shortcomings:

[0006] 1. When the server's operating components malfunction during outdoor operations, they are not easy to quickly repair and replace, forcing personnel to disassemble and reassemble them using tools, which does not provide the modular combination and portability effect.

[0007] 2. Servers require specific peripherals, such as protective facilities and power supply facilities. Otherwise, the server will be affected when used outdoors and will not be able to operate continuously. Furthermore, when these peripherals are connected to the server, personnel need to assemble and connect them one by one, which increases the cumbersomeness of the operation.

[0008] Therefore, this application proposes a modular storage server. Summary of the Invention

[0009] To address the shortcomings of existing technologies, this invention provides a modular storage server that solves the problems mentioned in the background section.

[0010] To achieve the above objectives, the present invention provides the following technical solution:

[0011] A modular storage server includes a storage chassis, a power supply chassis, and a heat dissipation mechanism. The storage chassis has a placement chamber and a conduction chamber inside. A guide assembly extending into the placement chamber is installed inside the conduction chamber. A storage unit is mounted on the top of the guide assembly. The power supply chassis is mounted on one side of the storage chassis. The power supply chassis has a placement chamber and a drive chamber inside. A placement assembly is slidably installed inside the placement chamber, and a battery is clamped inside the placement assembly. An extended drive assembly is installed inside the drive chamber and is connected to the placement assembly. A storage slot is provided on the top of the power supply chassis, and a photovoltaic module is installed inside the storage slot. A heat dissipation mechanism is shared between the storage chassis and the power supply chassis. One side of the storage chassis is covered by the heat dissipation mechanism, and heat dissipation is achieved through the heat dissipation mechanism on one side of the storage chassis.

[0012] The heat dissipation mechanism includes a heat dissipation component, a sealing component, and a docking component. The tops of the storage chassis and the power supply chassis are jointly connected and mounted with the docking component. A sealing component is fitted at the port of the docking component. A heat dissipation component is fixedly mounted at the bottom of the docking component, covering the outer side of the storage chassis. The photovoltaic module includes a mounting cavity, an expansion component, a second photovoltaic panel, a guide plate, and a positioning guide rod. A positioning guide rod is fixedly mounted at the top of the storage slot. A guide plate is fitted onto the positioning guide rod, and the guide plate has a guide port that mates with the positioning guide rod. A mounting cavity is fixedly mounted on the side of the guide plate. A second photovoltaic panel is fixedly mounted on the side of the mounting cavity. Two sets of expansion components are slidably mounted inside the mounting cavity. An external drive component package... The system includes a drive component, a clamping component, and a clamping plate; the placement assembly includes a placement rack and a tray, with the placement rack slidably installed inside the placement chamber, and the tray fixedly installed inside the placement rack; the drive chamber has a drive component installed inside, and the clamping component extending into the placement chamber is assembled inside the drive chamber, with the clamping plate installed at the drive end of the clamping component; the drive component and the clamping component are mutually assembled and driven; the guide assembly includes a support plate, a guide component, a carrier plate, and a slide rod, with the guide component assembled inside the transmission chamber, and the support plate extending into the placement chamber is installed on the top of the guide component; the placement chamber has a slide rod that penetrates the support plate, and the carrier plate is slidably installed on the top of the slide rod; the storage unit is clamped on the top of the carrier plate.

[0013] Furthermore, a second air duct is fixedly installed on the front and back of the storage chassis, and a first air duct is fixedly installed on the front and back of the power supply chassis. The second air duct and the first air duct are connected to each other by plugging in. The docking assembly includes a top plate and a plug plate. A plug plate is plugged into the interior of both the second air duct and the first air duct. A top plate is fixedly installed on the top of the plug plate. The plug plate is provided with an internal air passage that communicates with the interior of the storage chassis and the power supply chassis. The plug plate is connected to the second air duct and the first air duct by plugging in. Air in the first air duct is introduced into the second air duct through the internal air passage, and air in the second air duct is introduced into the power supply chassis through the internal air passage.

[0014] Furthermore, the docking assembly also includes a second sealing plate, a first toothed plate, a motor, a lead screw, and a guide block; the sealing assembly includes a baffle, a first sealing plate, a hinged cover plate, a movable shaft, and a first gear; an operating port is provided on the top plate, the second sealing plate is inserted into the operating port, an installation chamber is provided on the back of the top plate, and a guide opening is provided between the installation chamber and the operating port, a motor is fixedly installed inside the installation chamber, a lead screw is connected to the output shaft of the motor, a guide block is fitted on the lead screw, the guide block passes through the guide opening and is fixedly connected to the second sealing plate, a first toothed plate is fixedly installed at the bottom of the lead screw, a movable shaft extending into the installation chamber is connected to the outer port of the top plate, a first gear meshing with the first toothed plate is connected to the end of the movable shaft, a baffle is fixedly installed on the movable shaft, the baffle is located inside the outer port of the top plate, a first sealing plate is fixedly installed on one side of the baffle, a hinged cover plate is connected to the port of the installation chamber, the motor drives the first toothed plate through the lead screw, and the first toothed plate drives the baffle to rotate through the first gear.

[0015] Furthermore, the heat dissipation assembly includes a mounting shell, a second interface, a heat dissipation cavity, and a heat dissipation fan. The mounting shell is fixedly installed on one side of the bottom of the top plate. The second interface is provided on the outer side of the mounting shell. The heat dissipation cavity is provided inside the mounting shell. The heat dissipation fan is installed inside the heat dissipation cavity. An air vent for heat dissipation is provided between the second interface and the heat dissipation cavity.

[0016] The storage chassis has a window on one side that connects to the placement chamber and is also connected to the heat dissipation cavity. The cooling fan vents air into the placement chamber through the window to dissipate heat.

[0017] Furthermore, the expansion component also includes strips, a first photovoltaic panel, a connecting block, a positioning pin, and a shaft. Two sets of strips are slidably installed inside the mounting cavity. A shaft is installed on the outer sliding surface of the strips. A connecting block is movably installed inside the shaft via a positioning pin. The first photovoltaic panel is fixedly installed at the end of the connecting block. The first photovoltaic panel moves within the shaft via the positioning pin. The first photovoltaic panel rotates on the strips via the shaft. The first photovoltaic panel extends and retracts within the mounting cavity via the strips.

[0018] The photovoltaic module also includes a snap-fit ​​block 1. Two sets of snap-fit ​​blocks 1 are fixedly installed on the top of the guide plate, and two sets of snap-fit ​​slots 1 are provided on the top of the baffle. The snap-fit ​​blocks 1 and the snap-fit ​​slots 1 are snap-fitted together.

[0019] Furthermore, the driving component includes a fourth gear, a third gear plate, a fifth gear, and a second drive shaft; the clamping component includes a second gear, a first drive shaft, a second gear plate, a mounting base, and a third gear; the top of the power supply box is connected to a second drive shaft extending into the drive chamber, the bottom of the second drive shaft is connected to a fourth gear, the inner wall of the drive chamber is fixedly installed with a mounting base, the inside of the drive chamber is connected to a first drive shaft penetrating the mounting base, the end of the first drive shaft is connected to a third gear, a second gear is mounted on the first drive shaft, the inside of the drive chamber is connected to a second gear plate extending into the placement chamber, and the second gear plate meshes with the second gear, the end of the second gear plate is connected to a clamping plate, a fifth gear meshing with the third gear is mounted on the second drive shaft, the bottom of one side of the placement frame is fixedly installed with a third gear plate extending into the drive chamber, and the bottom of the second drive shaft is fixedly installed with a fourth gear meshing with the third gear plate.

[0020] Furthermore, the top and bottom of the placement rack are both provided with first sliding members, and the first sliding members are slidably connected to the power supply box. A spring is fixedly installed on the inner side of the placement rack, and the ends of the springs are connected to a clamping plate two. The clamping plate two is connected to the support plate through a sliding limit connection.

[0021] Furthermore, the guiding component includes an upper toothed plate, a lower toothed plate, a sixth gear, a rotating guide rod, and a connecting seat. The front of the storage chassis is fitted with a rotating guide rod extending into the conduction chamber. The sixth gear is mounted on the rotating guide rod. The bottom of the conduction chamber is slidably fitted with a lower toothed plate that meshes with the sixth gear. The bottom of the support plate is fixedly fitted with a connecting seat extending into the conduction chamber. The bottom of the connecting seat is fixedly fitted with an upper toothed plate that meshes with the sixth gear.

[0022] Furthermore, the top of the carrier plate is provided with a second snap-fit ​​groove, and the bottom of the storage unit is fixedly installed with a second snap-fit ​​block, which is snap-fitted and fixed to the second snap-fit ​​groove. The carrier plate and the support plate are slidably connected by a second sliding member. A support plug and a data plug are respectively installed on one side of the storage unit. A power plug is fixedly installed inside the storage chassis. The storage unit is electrically connected to the power plug through the support plug. A plug unit is fixedly installed on the top of the storage chassis. The plug end of the plug unit is electrically connected to the data plug. A first interface is provided inside the power supply chassis. A power slot is fixedly installed inside the first interface. The power slot is electrically connected to the battery through a cable. A handle is fixedly installed on the top of both the storage chassis and the power supply chassis. The handle penetrates the top plate.

[0023] Furthermore, both the storage chassis and the power supply chassis are fixedly mounted with bases at their bottoms, and two sets of fastening bolts are installed between the bases. The bottom of the bases is also fixedly mounted with wheels.

[0024] This invention provides a modular storage server. Compared with existing technologies, it has the following advantages:

[0025] 1. By combining the storage chassis, power supply chassis, and heat dissipation mechanism, a complete storage server body is formed, realizing the modular assembly of the server;

[0026] 2. By cooperating with the photovoltaic modules and the heat dissipation mechanism, the server can achieve photovoltaic energy saving, meet the usage needs during outdoor use, and increase the server's energy-saving effect. During server operation, it can also connect with the heat dissipation mechanism to form a barrier, ensuring the stability of the photovoltaic modules during operation. The heat dissipation mechanism can switch states according to the actual operation of the server. When the server is in operation, the heat dissipation mechanism can enter the heat dissipation state and connect with the photovoltaic modules. When the server is not in operation, the heat dissipation mechanism can exit the heat dissipation state and seal off the heat dissipation area, so that the server has a good protective effect when it is not in operation.

[0027] By cooperating with the extension drive component and the placement component, once the battery has been placed, the operator can perform synchronous operations. The operator only needs to rotate the battery placement structure to load the battery and clamp it in place, ensuring the stability of the battery within the placement structure. Attached Figure Description

[0028] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0029] Figure 1 A schematic diagram of the overall assembly state structure of the server of the present invention is shown;

[0030] Figure 2 This diagram illustrates the first modular assembly state structure of the server according to the present invention.

[0031] Figure 3 A schematic diagram of the second modular assembly state structure of the server according to the present invention is shown;

[0032] Figure 4 A schematic diagram of the heat dissipation mechanism of the present invention in its first assembly state is shown.

[0033] Figure 5 A schematic diagram of the second assembly state of the heat dissipation mechanism of the present invention is shown;

[0034] Figure 6 This diagram shows a first assembly state structural schematic of the storage chassis and storage body of the present invention;

[0035] Figure 7 This diagram shows a second assembly state structural diagram of the storage chassis and storage body of the present invention;

[0036] Figure 8 This diagram shows a first assembly state structural schematic of the storage chassis and conveying assembly of the present invention;

[0037] Figure 9 This diagram shows a second assembly state structural schematic of the storage chassis and conveying assembly of the present invention;

[0038] Figure 10 A schematic diagram of the first assembly state of the photovoltaic module of the present invention is shown;

[0039] Figure 11 A schematic diagram of the second assembly state structure of the photovoltaic module of the present invention is shown;

[0040] Figure 12 This diagram illustrates the assembly state of the expansion component and the mounting cavity of the present invention.

[0041] Figure 13 This diagram shows the assembly state of the power supply chassis and the placement components of the present invention.

[0042] Figure 14 This diagram illustrates the assembly state of the extension drive assembly and the placement assembly of the present invention.

[0043] The diagram shows: 1. Storage chassis; 11. Second air duct; 12. Plug-in unit; 13. Window; 14. Placement chamber; 15. Conduction chamber; 16. Power connector; 2. Power supply chassis; 21. Interface 1; 22. Power connector slot; 23. Cable tie; 24. First air duct; 25. Storage slot; 26. Handle; 27. Placement chamber; 28. Drive chamber; 3. Heat dissipation mechanism; 31. Heat dissipation assembly; 311. Mounting shell; 312. Interface 2; 313. Heat dissipation cavity; 314. Cooling fan; 32. Sealing assembly; 321. Baffle. Plate; 3211, Snap-fit ​​Slot 1; 322, Sealing Plate 1; 323, Hinge Cover Plate; 324, Movable Shaft; 325, First Gear; 33, Docking Assembly; 331, Top Plate; 3311, Operating Port; 3312, Guide Port; 3313, Installation Chamber; 332, Sealing Plate 2; 333, Insert Plate; 3331, Internal Airway; 334, First Tooth Plate; 335, Motor; 336, Lead Screw; 337, Guide Block; 4, Photovoltaic Module; 41, Installation Cavity; 42, Expansion Module; 421, Strip Plate; 422, First Photovoltaic Panel; 42 3. Connecting block; 424. Positioning pin; 425. Shaft; 43. Second photovoltaic panel; 44. Guide plate; 441. Guide port; 45. Snap-fit ​​block one; 46. Positioning guide rod; 5. Extended drive assembly; 51. Drive component; 511. Fourth gear; 512. Third gear plate; 513. Fifth gear; 514. Second transmission shaft; 52. Clamping component; 521. Second gear; 522. First transmission shaft; 523. Second gear plate; 524. Mounting base; 525. Third gear; 53. Clamping plate one; 6. Placement assembly; 61. Placement 611. Frame; 62. First sliding member; 63. Clamping plate II; 64. Spring; 7. Support plate; 7. Storage body; 71. Snap-fit ​​block II; 72. Support plug; 73. Data plug; 8. Guide assembly; 81. Support plate; 82. Guide component; 821. Upper toothed plate; 822. Lower toothed plate; 823. Sixth gear; 824. Rotating guide rod; 825. Connecting seat; 83. Carrier plate; 831. Second sliding member; 832. Snap-fit ​​groove II; 84. Slide rod; 9. Battery; 10. Base; 101. Traveling wheel; 102. Fastening bolt. Detailed Implementation

[0044] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention are described clearly and completely. Obviously, the described embodiments are only some embodiments of the present invention, not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0045] Example 1

[0046] To address the technical problems in the background section, the following modular storage server is proposed:

[0047] Combination Figures 1-14 As shown, the present invention provides a modular storage server, including a storage chassis 1, a power supply chassis 2, and a heat dissipation mechanism 3. The storage chassis 1 has a placement chamber 14 and a conduction chamber 15 inside. The conduction chamber 15 is equipped with a guide component 8 extending into the placement chamber 14. The top of the guide component 8 is connected to a storage body 7. The power supply chassis 2 is connected to one side of the storage chassis 1. The power supply chassis 2 has a placement chamber 27 and a drive chamber 28 inside. The placement chamber 27 has a slidably installed placement component 6. The placement component 6 has a battery 9 clamped inside. The drive chamber 28 has an extended drive component 5 inside, and the extended drive component 5 is assembled and connected to the placement component 6. The top of the power supply chassis 2 has a storage slot 25. The storage slot 25 has a photovoltaic module 4 inside. The storage chassis 1 and the power supply chassis 2 are jointly equipped with a heat dissipation mechanism 3. One side of the storage chassis 1 is covered by the heat dissipation mechanism 3, and one side of the storage chassis 1 is cooled by the heat dissipation mechanism 3.

[0048] During this process, the storage chassis 1, power supply chassis 2, and heat dissipation mechanism 3 are combined to form a complete storage server body, realizing the modular assembly of the server. Through the cooperation between the external drive component 5 and the placement component 6, after the personnel have placed the battery 9, they can perform synchronous operations. The personnel only need to rotate to put the battery 9 into the placement structure and clamp the battery 9 in place to ensure the stability of the battery 9 within the placement structure until the battery 9 is electrically connected. The guide component 8 not only supports the storage body 7 but also completes the assembly operation of the storage body 7. The personnel only need to rotate to complete the electrical connection of the storage body 7, and the connection is completed by snap-fit. The fixing of 7 ensures the stability of the storage unit 7 during installation. Through the cooperation between the photovoltaic module 4 and the heat dissipation mechanism 3, the photovoltaic energy saving of the server can be realized, meeting the usage needs during outdoor use and increasing the energy-saving effect of the server. It can also be expanded to complete the enclosure of the server while increasing the photovoltaic effect. During server operation, it connects with the heat dissipation mechanism 3 to ensure the stability of the photovoltaic module 4 during operation. The heat dissipation mechanism 3 can switch states according to the actual operation of the server. When the server is in operation, the heat dissipation mechanism 3 can enter the heat dissipation state and connect with the photovoltaic module 4. When the server is not in operation, the heat dissipation mechanism 3 can exit the heat dissipation state and complete the sealing of the heat dissipation area, so that the server has a good protective effect when it is not in operation.

[0049] The heat dissipation mechanism 3 includes a heat dissipation component 31, a sealing component 32, and a docking component 33. The top of the storage chassis 1 and the power supply chassis 2 are jointly connected and installed with the docking component 33. The sealing component 32 is installed at the port of the docking component 33. The heat dissipation component 31 is fixedly installed at the bottom of the docking component 33 and covers the outer side of the storage chassis 1. The photovoltaic module 4 includes a mounting cavity 41, an extension component 42, a second photovoltaic panel 43, a guide plate 44, and a positioning guide rod 46. The top of the storage slot 25 is fixedly installed with the positioning guide rod 46. The guide plate 44 is fitted on the positioning guide rod 46, and the guide plate 44 is provided with a guide port 441 that cooperates with the positioning guide rod 46. The mounting cavity 41 is fixedly installed on the side of the guide plate 44. The second photovoltaic panel 43 is fixedly installed on the side of the mounting cavity 41. Two sets of extension components 42 are slidably installed inside the mounting cavity 41. The extension drive component 5 includes a drive unit. The components include: Component 51, clamping component 52, and clamping plate 53; Placement assembly 6 includes placement rack 61 and tray 64. Placement rack 61 is slidably installed inside placement chamber 27, and tray 64 is fixedly installed inside placement rack 61. Drive component 51 is docked inside drive chamber 28, and clamping component 52 extending into placement chamber 27 is assembled inside drive chamber 28. Clamping plate 53 is docked at the drive end of clamping component 52. Drive component 51 and clamping component 52 are mutually assembled and driven; Conveying assembly 8 includes support plate 81, conveying component 82, carrier plate 83, and slide bar 84. Conveying component 82 is assembled inside conduction chamber 15. Support plate 81 extending into placement chamber 14 is installed on top of conveying component 82. Slide bar 84 penetrating support plate 81 is docked inside placement chamber 14. Carrier plate 83 is slidably installed on top of slide bar 84. Storage body 7 is clamped on top of carrier plate 83.

[0050] The docking component 33 completes the load-bearing connection of the heat dissipation component 31 and the sealing component 32. The docking component 33 also completes the interconnection between the storage chassis 1 and the power supply chassis 2, ensuring convection between them. This allows for simultaneous heat dissipation of both chassis 1 and chassis 2 during subsequent cooling processes. Meanwhile, the sealing component 32 completes the connection with the guide plate 44, providing support and ensuring its diagonal bracing. Then, the expansion component 42 is gradually extended from both sides of the mounting cavity 41 and rotated to create a barrier. It can also seal the heat dissipation windows of the heat dissipation component 31 when not in use. When placing the storage unit 7, personnel can use a snap-fit ​​and then push method for installation. The guide component 82 pushes the carrier plate 83, causing the storage unit 7 to connect with the internal plug-in terminal. The front end completes the connection, and the rear end is assembled with the storage chassis 1 to ensure the stability of the storage unit 7 during operation. When the power supply chassis 2 completes the placement and assembly of the battery 9, the personnel first place the battery 9 in the tray 64 of the placement rack 61. The drive component 51 drives the clamping component 52. At this time, two states will occur. When the drive component 51 rotates forward, it will drive the placement rack 61 to extend outward. At this time, the clamping component 52 will also exit the clamping state and release the positioning of the battery 9. When it rotates in reverse, it will drive the battery 9 on the placement rack 61 to retract inward. At the same time as retraction, the clamping component 52 will complete the clamping and fixing of the battery 9.

[0051] Example 2

[0052] like Figure 1 and Figure 14 As shown, based on the above embodiments, this embodiment further provides the following:

[0053] In this embodiment, a second air duct 11 is fixedly installed on the front and back of the storage chassis 1, and a first air duct 24 is fixedly installed on the front and back of the power supply chassis 2. The second air duct 11 and the first air duct 24 are connected to each other. The docking assembly 33 includes a top plate 331 and an insert plate 333. Insert plates 333 are inserted into the interior of both the second air duct 11 and the first air duct 24. The insert plates 333 dock with the air ducts to realize the docking between the storage chassis 1 and the power supply chassis 2. The top of the insert plates 333 is fixedly installed with the top plate 331, and the insert plates 333 are provided with built-in air passages 3331 that communicate with the interior of the storage chassis 1 and the power supply chassis 2. The insert plate 333 is connected to the second air guide channel 11 and the first air guide channel 24 respectively. The air in the first air guide channel 24 is introduced into the second air guide channel 11 through the built-in air channel 3331. The air in the second air guide channel 11 is introduced into the power supply chassis 2 through the built-in air channel 3331. In this way, the storage chassis 1 and the power supply chassis 2 will enter a communication state. When the heat dissipation component 31 is working, the external air will first enter from the power supply chassis 2, and through the cooperation of the second air guide channel 11 and the built-in air channel 3331 in the first air guide channel 24, the air will be introduced into the storage chassis 1 and then discharged by the heat dissipation component 31.

[0054] In this embodiment, the docking assembly 33 further includes a second sealing plate 332, a first toothed plate 334, a motor 335, a lead screw 336, and a guide block 337; the sealing assembly 32 includes a baffle 321, a first sealing plate 322, a hinged cover plate 323, a movable shaft 324, and a first gear 325; an operation port 3311 is provided on the top plate 331, and the second sealing plate 332 is inserted into the operation port 3311. An installation chamber 3313 is provided on the back of the top plate 331, and a guide port 3312 is provided between the installation chamber 3313 and the operation port 3311. A motor 335 is fixedly installed inside the installation chamber 3313, and a lead screw 336 is connected to the output shaft of the motor 335. A guide block 337 is fitted on the lead screw 336. The motor 335 drives the lead screw 336 to rotate, causing the guide block 337 to move linearly. The guide block 337 passes through the guide port 3312 and is fixedly connected to the second sealing plate 332. The bottom of the lead screw 336 is fixedly installed with a first toothed plate 334. The outer port of the top plate 331 is connected to a movable shaft 324 extending into the installation chamber 3313. The end of the movable shaft 324 is connected to a first gear 325 that meshes with the first toothed plate 334. A baffle 321 is fixedly installed on the movable shaft 324. The baffle 321 is located inside the outer port of the top plate 331. The first sealing plate 322 is fixedly installed on one side of the baffle 321. A hinged cover plate 323 is connected to the port of the installation chamber 3313. The motor 335 drives the first toothed plate 334 through the lead screw 336. The first toothed plate 334 drives the baffle 321 to rotate by driving the first gear 325, so that the baffle 321 enters the required state.

[0055] In state one, baffle 321 blocks the heat dissipation window, while sealing plate two 332 blocks the operation port 3311 to prevent the docking end from being exposed when not in operation.

[0056] In state two, the baffle 321 is unblocked and flipped up. After flipping up, it is snapped and fixed to the installation cavity 41, completing the construction and fixation with the installation cavity 41. At the same time, the operating port 3311 is also exposed.

[0057] In this embodiment, the heat dissipation assembly 31 includes a mounting shell 311, a second interface 312, a heat dissipation cavity 313, and a cooling fan 314. The mounting shell 311 is fixedly installed on one side of the bottom of the top plate 331. The second interface 312 is provided on the outer side of the mounting shell 311. The second interface 312 is mated with the first sealing plate 322 for sealing. The heat dissipation cavity 313 is provided inside the mounting shell 311. The cooling fan 314 is installed inside the heat dissipation cavity 313. A vent for heat dissipation is provided between the second interface 312 and the heat dissipation cavity 313. After the cooling fan 314 is started, the heat in the storage chassis 1 can be extracted and discharged.

[0058] A window 13 is provided on one side of the storage chassis 1, which communicates with the placement chamber 14 and is connected to the heat dissipation cavity 313. Heat is first introduced into the heat dissipation cavity 313 through the window 13, and the cooling fan 314 conducts airflow and heat dissipation in the placement chamber 14 through the window 13.

[0059] Example 3

[0060] like Figures 1-14 As shown, based on the above embodiments, this embodiment further provides the following:

[0061] In this embodiment, the extension component 42 further includes strips 421, a first photovoltaic panel 422, a connecting block 423, a positioning pin 424, and a shaft 425. Two sets of strips 421 are slidably installed inside the mounting cavity 41. The strips 421 can only slide within the mounting cavity 41 to drive the first photovoltaic panel 422 to extend outwards in opposite directions, thus extending to both sides of the mounting cavity 41. The outer sliding surfaces of the strips 421 are abutted against the shaft 425. The shaft 425 is internally connected to a positioning pin 424. A connecting block 423 is movably mounted on the positioning pin 424. A first photovoltaic panel 422 is fixedly mounted on the end of the connecting block 423. The first photovoltaic panel 422 moves within the shaft 425 via the positioning pin 424, causing the first photovoltaic panel 422 to rotate within the shaft 425 via the positioning pin 424. The first photovoltaic panel 422 rotates on the strip 421 via the shaft 425, thereby adjusting the angle of the first photovoltaic panel 422. The first photovoltaic panel 422 extends and retracts within the mounting cavity 41 via the strip 421.

[0062] The photovoltaic module 4 also includes a snap-fit ​​block 45. Two sets of snap-fit ​​blocks 45 are fixedly installed on the top of the guide plate 44. Two sets of snap-fit ​​slots 3211 are provided on the top of the baffle 321. The snap-fit ​​blocks 45 and the snap-fit ​​slots 3211 are snapped together. When the server is in operation, the baffle 321 is in an upward-flipped state and snaps together with the guide plate 44. The snap-fit ​​method will make the snap-fit ​​blocks 45 and the snap-fit ​​slots 3211 snap together, thus completing the construction of the two.

[0063] In this embodiment, the driving component 51 includes a fourth gear 511, a third gear plate 512, a fifth gear 513, and a second transmission shaft 514; the clamping component 52 includes a second gear 521, a first transmission shaft 522, a second gear plate 523, a mounting base 524, and a third gear 525; the top of the power supply housing 2 is fitted with a second transmission shaft 514 extending into the drive chamber 28, and a rotating cap is provided on the top of the second transmission shaft 514 for rotation, during which personnel can drive the second transmission shaft 514 to rotate by rotating the cap; the bottom of the second transmission shaft 514 is fitted with a fourth gear 511; the inner wall of the drive chamber 28 is fixedly fitted with a mounting base 524, and the interior of the drive chamber 28 is fitted with a first transmission shaft 522 penetrating the mounting base 524; the first transmission shaft 522... A third gear 525 is installed at the end of the first drive shaft 522, a second gear 521 is mounted on the first drive shaft 522, a second toothed plate 523 extending into the housing 27 is installed inside the drive chamber 28, and the second toothed plate 523 meshes with the second gear 521. A clamping plate 53 is installed at the end of the second toothed plate 523, a fifth gear 513 meshing with the third gear 525 is mounted on the second drive shaft 514, a third toothed plate 512 extending into the drive chamber 28 is fixedly installed on the bottom of one side of the placement frame 61, and a fourth gear 511 meshing with the third toothed plate 512 is fixedly installed on the bottom of the second drive shaft 514. The rotation of the second drive shaft 514 will synchronously drive the fifth gear 513 and the fourth gear 511 on itself to rotate and generate the working state.

[0064] The fourth gear 511 drives the placement frame 61 through the third gear plate 512, causing the placement frame 61 to perform telescopic movement;

[0065] The fifth gear 513 will drive the first transmission shaft 522 to rotate through the third gear 525, causing another set of second gears 521 on the first transmission shaft 522 to drive the second gear plate 523 to move.

[0066] The above two operations are synchronized, realizing the receipt of battery 9, and clamping or pushing battery 9 out during receipt, and releasing the clamping of battery 9 at the same time as pushing out.

[0067] In this embodiment, the top and bottom of the placement rack 61 are provided with first sliding members 611, and the first sliding members 611 are slidably connected to the power supply box 2. A spring 63 is fixedly installed on the inner side of the placement rack 61, and the ends of the spring 63 are connected to a clamping plate 62. The clamping plate 62 and the support plate 64 are connected by a sliding limit.

[0068] Based on the above, when the battery 9 is subjected to two forces, a buffer space will be provided to the battery 9 in order to avoid interference. This buffering force is accomplished by the cooperation of spring 63 and clamp 62, so that the battery 9 can still perform retraction movement when subjected to thrust.

[0069] In this embodiment, the guiding component 82 includes an upper toothed plate 821, a lower toothed plate 822, a sixth gear 823, a rotating guide rod 824, and a connecting seat 825. The rotating guide rod 824 extending into the transmission chamber 15 is installed on the front of the storage chassis 1. The sixth gear 823 is fitted on the rotating guide rod 824. The lower toothed plate 822, which meshes with the sixth gear 823, is slidably installed at the bottom of the transmission chamber 15. The connecting seat 825 extending into the transmission chamber 15 is fixedly installed at the bottom of the carrier plate 83. The upper toothed plate 821, which meshes with the sixth gear 823, is fixedly installed at the bottom of the connecting seat 825. The rotating guide rod 824 drives the upper toothed plate 821 and the lower toothed plate 822 to move in opposite directions, so that the upper toothed plate 821 and the lower toothed plate 822 achieve their respective working effects.

[0070] The upper toothed plate 821 drives the support plate 81 to move through the connecting seat 825, causing the storage body 7 that is being installed to complete the electrical connection.

[0071] The lower toothed plate 822 will then conduct the transmission in the opposite direction and insert into the inner wall of the transmission chamber 15, completing the docking with the insertion interface of the inner wall of the transmission chamber 15, thus completing the locking and fixing in the working state and preventing loosening during operation.

[0072] In this embodiment, the top of the carrier plate 83 is provided with a second snap-fit ​​groove 832, and the bottom of the storage unit 7 is fixedly installed with a second snap-fit ​​block 71. The second snap-fit ​​block 71 and the second snap-fit ​​groove 832 are snap-fitted and fixed to each other, ensuring that the storage unit 7 can be placed by personnel in real time. The snap-fit ​​method allows personnel to perform tool-free installation and connection. The carrier plate 83 and the support plate 81 are slidably connected by a second sliding member 831. A support plug 72 and a data plug 73 are respectively installed on one side of the storage unit 7 to meet the plug-in requirements of the storage unit 7, ensuring that the storage unit 7 can be electrically connected to the battery 9 and matched with the plug-in unit 12. A power connector 16 is fixedly installed on the inside of the storage chassis 1, and the storage unit 7 is electrically connected to the power connector 16 through the support plug 72. The storage chassis 1 is fixedly installed with a plug-in unit 12 on its top. The plug-in end of the plug-in unit 12 is electrically connected to the data plug 73. The power supply chassis 2 is provided with a docking interface 21 on its inner side. The docking interface 21 is fixedly installed with a power connector slot 22. The power connector slot 22 is electrically connected to the battery 9 through a cable strip 23. The cable strip 23 extends into the installation room and is provided with a plug-in terminal that mates with the battery 9 to achieve the docking connection between the two. Both the storage chassis 1 and the power supply chassis 2 are fixedly installed with handles 26 on their tops. The handles 26 penetrate the top plate 331. When the storage chassis 1 and the power supply chassis 2 are assembled, the handles 26 on the storage chassis 1 and the power supply chassis 2 will merge together, making it more convenient for personnel to carry the server.

[0073] During this process, the storage chassis 1 and the power supply chassis 2 are connected via the base 10 at the bottom and the base 10 is fixed by two sets of fastening bolts 102. The bottom of the base 10 is fixedly equipped with a walking wheel 101, thereby completing the combination and connection of the server. After assembly, the walking wheel 101 assists in its movement.

[0074] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.

[0075] The above embodiments are only used to illustrate the technical solutions of the present invention, and are not intended to limit it. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.

Claims

1. A modular storage server, characterized by: Including storage case and heat dissipation mechanism, one side of the storage case is connected and installed with the heat dissipation assembly; the power supply case is located on the side opposite to the storage case and the heat dissipation assembly, and the power supply case and the storage case are respectively located at two ends of the entire modular storage server; The storage case is internally provided with a storage body, the storage body is installed at the top of a guide assembly, the guide assembly is installed in the storage case and is used to drive the storage body to enter and exit the storage case, the power supply case is internally provided with a storage battery used to supply power for the storage body, the storage battery is arranged in a placing assembly, the placing assembly is slidingly installed in the power supply case, the power supply case is further assembled with an outward driving assembly, the outward driving assembly is assembled and connected with the placing assembly and is used to clamp and / or drive the storage battery to enter and exit the power supply case; The top of the power supply case is provided with a receiving groove, and the receiving groove is internally assembled with a photovoltaic assembly; the photovoltaic assembly comprises an installation cavity, a second photovoltaic panel, a guide plate and a positioning guide rod, the top of the receiving groove is fixedly installed with the positioning guide rod, the positioning guide rod is sleeved with the guide plate, the side surface of the guide plate is fixedly installed with the installation cavity, and the side surface of the installation cavity is fixedly installed with the second photovoltaic panel; The bottom of the storage case and the bottom of the power supply case are fixedly installed with bases, the base at the bottom of the storage case is a first base, the base at the bottom of the power supply case is a second base, and two groups of fastening bolts are connected and installed between the first base and the second base.

2. The modular storage server of claim 1, wherein: Further comprising a heat dissipation mechanism; the heat dissipation mechanism comprises a heat dissipation assembly, a sealing assembly and a connecting assembly, the top of the storage case and the top of the power supply case are jointly connected and installed with the connecting assembly, the port of the connecting assembly is assembled with the sealing assembly, the bottom of the connecting assembly is fixedly installed with the heat dissipation assembly, and the heat dissipation assembly covers the outer side surface of the storage case.

3. The modular storage server of claim 2, wherein: The side surface of the power supply case is fixedly installed with a first air guide channel, the side surface of the storage case is fixedly installed with a second air guide channel, the second air guide channel and the first air guide channel are in interpenetrating communication; the connecting assembly comprises a top plate and a plug-in plate, the second air guide channel and the first air guide channel are respectively inserted with the plug-in plate, the top of all the plug-in plates is jointly fixedly installed with the top plate, and the plug-in plate is internally provided with an internal air duct in communication with the inside of the storage case and the power supply case; when the plug-in plate is synchronously inserted and communicated with the second air guide channel and the first air guide channel, the air in the first air guide channel is guided into the second air guide channel through the internal air duct, and the storage case and the power supply case enter the communicating state.

4. The modular storage server of claim 3, wherein: The docking assembly further includes a blocking plate two, a first toothed plate, a motor, a lead screw, a guide block; the closing assembly includes a baffle, a blocking plate one, a hinged cover plate, a movable shaft, a first gear; the top plate is provided with an operation port, the operation port is inserted with the blocking plate two, the back of the top plate is provided with a mounting chamber, and the mounting chamber is provided with a guide port between the operation port, the mounting chamber is provided with the motor, the output shaft of the motor is provided with the lead screw, the lead screw is provided with the guide block, the guide block penetrates the guide port, and is fixedly connected with the blocking plate two, the bottom of the lead screw is fixedly provided with the first toothed plate, the outer port of the top plate is provided with the movable shaft extending into the mounting chamber, the end of the movable shaft is provided with the first gear meshing with the first toothed plate, the movable shaft is fixedly provided with the baffle, the baffle is located in the outer port of the top plate, one side of the baffle is fixedly provided with the blocking plate one, the end of the mounting chamber is provided with the hinged cover plate, the motor drives the first toothed plate through the lead screw, and the baffle is driven to overturn through the first gear.

5. The modular storage server of claim 2, wherein: The heat dissipation assembly includes a mounting shell, a docking port two, a heat dissipation cavity, and a heat dissipation fan, one side of the bottom of the top plate is provided with the mounting shell, the outer side of the mounting shell is provided with the docking port two, the inside of the mounting shell is provided with the heat dissipation cavity, and the inside of the heat dissipation cavity is provided with the heat dissipation fan; the side of the storage case is provided with a window communicating with the inner cavity of the storage case, and the window communicates with the inside of the heat dissipation cavity.

6. The modular storage server of claim 1, wherein: The photovoltaic assembly further includes an expansion assembly, two groups of expansion assemblies are slidingly installed in the mounting cavity, the expansion assembly includes a strip plate, a first photovoltaic plate, a connecting block, a positioning pin shaft, and a shaft rod, two groups of strip plates are slidingly installed in the mounting cavity, the outer sliding surface of the strip plate is provided with the shaft rod, the inside of the shaft rod is movably provided with the connecting block through the positioning pin shaft, the end of the connecting block is fixedly provided with the first photovoltaic plate, the first photovoltaic plate is movably arranged in the shaft rod through the positioning pin shaft, the first photovoltaic plate is rotatable on the strip plate through the shaft rod, and the first photovoltaic plate is telescopic in the mounting cavity through the strip plate.

7. The modular storage server of claim 1, wherein: The placing assembly includes a placing rack and a supporting plate; the placing rack is slidingly installed in the power supply case, and the supporting plate is fixedly installed in the placing rack; the outer extension driving assembly includes a driving component, a clamping component, and a clamping plate one; the driving component includes a fourth gear, a third toothed plate, a fifth gear, and a second transmission shaft; the clamping component includes a second gear, a first transmission shaft, a second toothed plate, a mounting seat, and a third gear; the top of the power supply case is provided with the second transmission shaft, the bottom of the second transmission shaft is provided with the fourth gear, the mounting seat is fixedly installed in the power supply case, the first transmission shaft penetrating the mounting seat is slidingly installed in the power supply case, the end of the first transmission shaft is provided with the third gear, the first transmission shaft is provided with the second gear, the second toothed plate is slidingly installed in the power supply case and is meshed with the second gear, the end of the second toothed plate is provided with the clamping plate one, the second transmission shaft is provided with the fifth gear meshed with the third gear, the bottom of one side of the placing rack is fixedly provided with the third toothed plate, and the bottom of the second transmission shaft is fixedly provided with the fourth gear meshed with the third toothed plate.

8. The modular storage server of claim 7, wherein: The top and bottom of the rack are provided with first sliding members, and the first sliding members are in sliding connection with the power supply box.

9. The modular storage server of claim 7, wherein: The storage machine box is internally provided with a guide component, the top of the guide component is provided with a support plate, the storage machine box is internally provided with a slide rod penetrating through the support plate, the top of the slide rod is provided with a load plate, the top of the load plate is provided with a storage machine body; the guide component comprises an upper tooth plate, a lower tooth plate, a sixth gear, a rotating guide rod, and a connecting seat, the front of the storage machine box is provided with the rotating guide rod, the rotating guide rod is provided with the sixth gear, the storage machine box is internally provided with the lower tooth plate in meshing connection with the sixth gear, the bottom of the load plate is provided with the connecting seat, the bottom of the connecting seat is provided with the upper tooth plate in meshing connection with the sixth gear.

10. The modular storage server of claim 9, wherein: The top of the load plate is provided with a clamping groove two, the bottom of the storage machine body is provided with a clamping block two, and the clamping block two and the clamping groove two are clamped and fixed with each other, the load plate and the support plate are in sliding connection through a second sliding member, one side of the storage machine body is provided with a support plug and a data plug, the inner side of the storage machine box is provided with an electric plug, the storage machine body is electrically connected with the electric plug through the support plug, the top of the storage machine box is provided with a plug-in unit, the plug-in end of the plug-in unit is electrically connected with the data plug, the inner side of the power supply box is provided with a butt joint one, the inner side of the butt joint one is provided with an electric plug slot, and the electric plug slot is electrically connected with the storage battery through a wire, the top of the storage machine box and the power supply box is provided with a handle.

Citation Information

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