Server storage architecture
By designing a server storage architecture including protective shell, heat dissipation component, center board, partition, protective sleeve and positioning component, the collision and friction problems caused by displacement of storage dedicated servers during handling are solved, and more efficient positioning protection and heat dissipation effect are achieved, reducing the cost of use.
Patent Information
- Application Number
- CN202421684445.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-17
- Publication Date
- 2025-06-17
- Estimated Expiration
- 2034-07-17
AI Technical Summary
During the handling process, the existing storage dedicated server architecture can easily cause the displacement between the server and the data storage disk, causing collisions or friction, affecting work efficiency and increasing usage costs.
A server storage architecture is designed, including protective housing, cooling components, center panels, partitions, protective sleeves and positioning components. The protective shell is divided into four drive chambers through the center plate, partition plate and protective sleeve, and the positioning components include support plate, groove, telescopic plate, connection plate and protection plate to achieve positioning protection of the server storage architecture component.
It effectively avoids position deviation of server storage architecture components, improves work efficiency, reduces damage risk and usage costs, and improves the heat dissipation effect of storage devices through cooling components.
Smart Images

Figure CN222995099U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of data storage devices, in particular to a server storage architecture. Background Art
[0002] In the era of technological development, when using a computer for work, it is necessary to store data. And when in use, the data is generally stored in a storage disk through a storage server. Before storage, it is necessary to design the architecture of the storage server to ensure that the data can be correctly saved. However, when a general dedicated storage server is in use, it cannot back up data, and data loss is likely to occur.
[0003] According to the patent document with the authorization announcement number: CN210109723, named "A Dedicated Storage Server Architecture", this new type includes a protective shell. There is a first rectangular hole communicating with the outside inside the protective shell. Data storage disks are provided on the bottom wall of the first rectangular hole and on the first heat dissipation partition. There is also a second rectangular hole communicating with the outside inside the protective shell. An application server is provided on the bottom wall of the second rectangular hole. A data server is provided on the lower second heat dissipation partition, and a backup server is provided on the upper second heat dissipation partition. The utility model can realize data backup and has a good heat dissipation effect, ensuring that the storage device is more efficient when working.
[0004] Although the above dedicated storage server architecture ensures that the storage device is more efficient when working through a cooling fan, the protective shell is relatively simple. When the protective shell is being carried, the multiple servers and data storage disks inside the protective shell are displaced, causing collisions or frictions with the protective shell, affecting the working efficiency of the servers and data storage disks, and at the same time causing damage to the servers, resulting in an increase in the usage cost. Summary of the Utility Model
[0005] Aiming at the problems in the background art, a server storage architecture is proposed.
[0006] The utility model proposes a server storage architecture, including:
[0007] A protective shell;
[0008] A heat dissipation component located on the protective shell;
[0009] A central board located on the protective shell. A through hole is provided at one end of the central board. Two groups of partitions are provided on both sides of the central board. The partitions are provided with protective sleeves, and the protective sleeves are arranged on both sides of the inner wall of the protective shell;
[0010] and a positioning component, including a support plate provided on one side of the protective cover and grooves at both ends of the support plate. The grooves are provided with telescopic plates, the telescopic plates are provided with connecting plates, and the connecting plates are provided with protective plates. The protective plates move on the central plate and the protective cover, and are used to position and protect according to the server storage architecture components.
[0011] Preferably, the heat dissipation component includes a rear cover located at the rear side of the protective housing. A fixing cylinder is provided at the center position of the rear cover, a motor is provided in the fixing cylinder, and a fan blade is provided on the motor, which is used to dissipate heat from the server storage architecture components.
[0012] Preferably, a front cover is provided on the front side of the protective housing. The front cover is provided with an opening for observing the operation of the server storage architecture.
[0013] The front cover is connected to the protective housing using screws, and at the same time, the protective housing is connected to the rear cover using screws.
[0014] Preferably, the protective cover is provided with a first guide groove, and the central plate is provided with a second guide groove for cooperating with the positioning component to move.
[0015] Preferably, limiting plates are provided on both sides of the protective plate. During the movement of the protective plate, the limiting plates move in the first guide groove and the second guide groove for vertical movement.
[0016] One end of the protective cover is provided with a bottom plate, and the bottom plate cooperates with the protective plate to position and protect the server storage architecture components.
[0017] Preferably, the server storage architecture components include a backup server, a data server, an application server, and a data storage disk located on the protective plate, which are used for the operation of the server storage architecture.
[0018] Compared with the prior art, the utility model has the following beneficial technical effects:
[0019] By providing grooves at both ends of the support plate in the utility model, telescopic plates are provided in the grooves, the telescopic plates are connected to the connecting plates, and the connecting plates are provided with protective plates. The protective plates are movably connected to multiple servers and data storage disks, so that the protective plates can be adjusted according to the server storage architecture components, achieving positioning and protection of the server storage architecture components, avoiding the position deviation of the server storage architecture components, improving the working efficiency of the storage architectures of multiple servers and data storage disks, and at the same time avoiding damage, which is convenient for reducing the use cost of the server storage architecture.
[0020] The utility model divides the inside of the protective shell into four protective drive chambers through the central plate, partition plate and protective sleeve. Then, through holes are provided on both the central plate and the partition plate at one end of the rear cover, and the through holes are convenient for cooperating with the heat dissipation component to dissipate heat from the server storage architecture. The protective sleeves are arranged on both sides of the partition plate, and the protective sleeves are in an inverted "U" shape and are made of the same material as the protective plate, which is convenient for protecting the server and further improves the efficiency of the storage device during operation. Description of the Drawings
[0021] Figure 1 It is a schematic diagram of the overall structure in the utility model;
[0022] Figure 2 It is a schematic diagram of the internal structure of the protective shell in the utility model;
[0023] Figure 3 It is a schematic diagram of the central plate structure in the utility model;
[0024] Figure 4 It is a schematic diagram of the partition plate structure in the utility model;
[0025] Figure 5 It is a schematic diagram of the support plate structure in the utility model.
[0026] Reference Numerals: 1. Protective Shell; 2. Heat Dissipation Component; 201. Rear Cover; 202. Fixed Cylinder; 203. Motor; 204. Fan Blade; 3. Front Cover; 301. Opening; 4. Central Plate; 401. Through Hole; 402. Partition Plate; 403. Protective Sleeve; 404. First Guide Groove; 405. Second Guide Groove; 5. Support Plate; 501. Groove; 502. Telescopic Plate; 503. Connecting Plate; 504. Protective Plate; 505. Limiting Plate; 506. Bottom Plate; 6. Backup Server; 7. Data Server; 8. Application Server; 9. Data Storage Disk. Detailed Description of the Embodiment
[0027] The following will describe the specific embodiments of the present disclosure in detail with reference to the accompanying drawings. It should be understood that the specific embodiments described herein are only for the purpose of illustration and explanation of the present disclosure, and are not intended to limit the present disclosure.
[0028] Embodiment 1
[0029] As Figures 1 - 5As shown in the figure, a server storage architecture proposed by the present utility model includes: a protective housing 1; a heat dissipation component 2 located on the protective housing 1; a central board 4 located on the protective housing 1. One end of the central board 4 is provided with a through hole 401, and two groups of partition boards 402 are arranged on both sides of the central board 4. The partition boards 402 are provided with protective sleeves 403, and the protective sleeves 403 are arranged on both sides of the inner wall of the protective housing 1; and a positioning component, including a support plate 5 arranged on one side of the protective sleeve 403 and grooves 501 at both ends of the support plate 5. The grooves 501 are provided with telescopic plates 502, the telescopic plates 502 are provided with connecting plates 503, and the connecting plates 503 are provided with protective plates 504. It moves on the central board 4 and the protective sleeve 403 for positioning and protecting according to the server storage architecture components. The central board 4 is arranged on the protective housing 1, and a through hole 401 is arranged at one end of the central board 4. The through hole 401 is used to disperse the heat dissipation air flow in the inner cavity at the rear side of the protective housing 1. Both sides of the central board 4 are connected to the partition boards 402, and through holes 401 are also arranged on the partition boards 402 for cooperation, so as to convey the heat dissipation air flow to the server storage architecture components, achieving heat dissipation for the server storage architecture components. The support plate 5 is connected to the opposite side of the central board 4 and the protective sleeve 403. The support plate 5 is connected to the telescopic plate 502 through the groove 501. The telescopic plate 502 is connected to the connecting plate 503, and the connecting plate 503 is used to arrange the protective plate 504 above the server storage architecture components, facilitating adjustment according to the server storage architecture components and using it for positioning and protecting the server storage architecture components.
[0030] Further, the protective sleeve 403 is provided with a first guiding groove 404, and the central board 4 is provided with a second guiding groove 405 for cooperating with the movement of the positioning component. Both the protective sleeve 403 and the central board 4 are provided with guiding grooves for cooperation. Through the first guiding groove 404 and the second guiding groove 405, it is convenient to increase the stability effect of the movement of the positioning component. At the same time, the central board 4, the partition board 402, and the protective sleeve 403 are made of protective materials such as metal, which is convenient for positioning and protecting the server storage architecture components.
[0031] Further, both sides of the protective plate 504 are provided with limiting plates 505. During the movement of the protective plate 504, the limiting plates 505 move in the first guiding groove 404 and the second guiding groove 405 for vertical movement; one end of the protective sleeve 403 is provided with a bottom plate 506, and the bottom plate 506 cooperates with the protective plate 504 to position and protect the server storage architecture components. Both sides of the protective plate 504 are connected to the limiting plates 505, and the limiting plates 505 move in the first guiding groove 404 and the second guiding groove 405. When the telescopic plate 502 and the connecting plate 503 are adjusted according to the height of the server storage architecture components, the limiting plates 505 move in the first guiding groove 404 and the second guiding groove 405, which is convenient for vertical movement and improves the positioning and protection of the server storage architecture components. The protective plate 504 and the bottom plate 506 are made of the same material as the central board 4, which is convenient for cooperating with the positioning and protection of the server storage architecture components.
[0032] Embodiment 2
[0033] As Figure 2 and Figure 3 shown, a server storage architecture proposed by the present utility model, on the basis of the above embodiment, this embodiment also details the specific components and the cooperation method.
[0034] Further explanation, the heat dissipation component 2 includes a rear cover 201 located at the rear side of the protection shell 1. A fixing cylinder 202 is provided at the center position of the rear cover 201. A motor 203 is provided in the fixing cylinder 202, and a fan blade 204 is provided on the motor 203 for dissipating heat from the server storage architecture components. The rear cover 201 is provided with the fixing cylinder 202, the fixing cylinder 202 is provided with the motor 203, and the motor 203 is connected to the fan blade 204, which is convenient to turn on the motor 203 and rotate the fan blade 204 to generate air flow, and then dissipate heat from the server storage architecture components through the through hole 401.
[0035] Further explanation, a front cover 3 is provided on the front side of the protection shell 1. The front cover 3 is provided with an opening 301 for observing the operation of the server storage architecture; the front cover 3 is connected to the protection shell 1 by screws, and at the same time, the protection shell 1 is connected to the rear cover 201 by screws. The front cover 3 is provided with the opening 301, and the opening 301 is convenient for observing the operation of the server storage architecture components. At the same time, it also cooperates with the heat dissipation component 2 to dissipate heat from the server storage architecture components. At the same time, the front cover 3 is connected to the protection shell 1 by bolts, and the rear cover 201 is connected to the protection shell 1 by bolts, which is convenient for disassembling the protection shell and improving the protection of the server storage architecture.
[0036] Further explanation, for the server storage architecture components, a backup server 6, a data server 7, an application server 8, and a data storage disk 9 located on the protection board 504 are used for the operation of the server storage architecture. Operating systems for the backup server 6, the data server 7, the application server 8, and the data storage disk 9 through the server storage architecture components, and then the backup server 6, the data server 7, the application server 8, and the data storage disk 9 run. These are all prior arts and can be fully realized by those skilled in the art, so they will not be elaborated here. The content protected by the present utility model does not involve improvements to software and methods.
[0037] The working principle of the present utility model is as follows: By arranging a central plate 4 inside the protective housing 1, both sides of the central plate 4 are provided with partitions 402. The partitions 402 divide the inside of the protective housing 1 into front and rear chambers, and the front chamber is larger than the usage range of the rear chamber. The server storage architecture components are arranged on the front chamber. Furthermore, a through hole 401 is arranged at one end of the central plate 4, and the end of the through hole 401 is the rear chamber. A through hole 401 is arranged on the partition 402, and the rear chamber of the protective housing 1 is connected to the heat dissipation component 2. The heat dissipation is shunted and conveyed into the front chamber through the through hole 401 to dissipate heat from the server storage architecture components. Then, the server storage architecture components are positioned and protected in sequence from the bottom plate 506. Above the bottom plate 506 is opposite to the protection plate 504. The protection plate 504 is connected to the telescopic plate 502 through the connecting plate 503. The telescopic plate 502 is arranged on the support plate 5 through the groove 501. The support plate 5 is connected to the opposite side of the central plate 4 and the protective sleeve 403. The staff operates the protection plate 504 and sets a handle on the protection plate 504. The protection plate 504 is moved upward using the handle, causing the telescopic plate 502 to move telescopically. Then, the application server 8 is arranged therein. After setting, the handle is released, causing the telescopic plate 502 to automatically move downward, so as to connect to the upper part of the server storage architecture components, and cooperate with the bottom plate 506 to position the server storage architecture components therein. Furthermore, the operation of setting the data storage disk 9 is the same as that of the application server 8. In the case of arranging the backup server 6 and the data server 7, they are sequentially arranged on the corresponding upper support plate 5, and then are positioned by moving the protection plate 504.
[0038] The embodiments of the present utility model have been described in detail above in conjunction with the accompanying drawings. However, the present utility model is not limited thereto. Various changes can be made without departing from the gist of the present utility model within the scope of knowledge possessed by those skilled in the art to which it pertains.
Claims
1. A server storage architecture, characterized in that: include: Protective housing (1); A heat dissipation component (2) is located on the protective housing (1); A central plate (4) is located on the protective shell (1), a through hole (401) is provided at one end of the central plate (4), two groups of partitions (402) are provided on both sides of the central plate (4), the partitions (402) are provided with protective sleeves (403), and the protective sleeves (403) are provided on both sides of the inner wall of the protective shell (1); And a positioning component, comprising a support plate (5) arranged on one side of the protective cover (403) and grooves (501) at both ends of the support plate (5), the groove (501) being provided with a telescopic plate (502), the telescopic plate (502) being provided with a connecting plate (503), the connecting plate (503) being provided with a protective plate (504), and being moved on the central plate (4) and the protective cover (403) to position and protect the server storage frame components.
2. A server storage architecture according to claim 1, characterized in that: The heat dissipation component (2) comprises a rear cover (201) located at the rear side of the protective housing (1); a fixing cylinder (202) is arranged at the center of the rear cover (201); a motor (203) is arranged on the fixing cylinder (202); and a fan blade (204) is arranged on the motor (203) for dissipating heat from the server storage frame components.
3. A server storage architecture according to claim 2, characterized in that: A front cover (3) is provided on the front side of the protective housing (1), and the front cover (3) is provided with an opening (301) for observing the operation of the server storage architecture; The front cover (3) is connected to the protective housing (1) by screws, and the protective housing (1) is connected to the rear cover (201) by screws.
4. A server storage architecture according to claim 3, characterized in that: The protective cover (403) is provided with a first guide groove (404), and the central plate (4) is provided with a second guide groove (405), which are used to cooperate with the movement of the positioning assembly.
5. A server storage architecture according to claim 4, characterized in that: Limiting plates (505) are arranged on both sides of the protection plate (504). When the protection plate (504) moves, the limiting plates (505) move in the first guide groove (404) and the second guide groove (405) for vertical movement. A bottom plate (506) is provided at one end of the protective cover (403), and the bottom plate (506) cooperates with the protective plate (504) to position and protect the server storage frame components.
6. A server storage architecture according to claim 5, characterized in that: The server storage architecture components, the backup server (6), the data server (7), the application server (8), and the data storage disk (9) located on the protection board (504), are used for the server storage architecture to run the application.
Citation Information
Patent Citations
Server architecture special for storage
CN210109723U