Disk array device

By introducing array cabinets, air ducts, and blowers into the disk array device, the problems of uneven heat dissipation and inconvenient fixation are solved, achieving efficient heat dissipation and convenient maintenance.

CN223977696UActive Publication Date: 2026-03-06JINAN GUANGPENG SIZHAN TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-11
Publication Date
2026-03-06

AI Technical Summary

Technical Problem

Traditional disk array devices suffer from uneven heat dissipation during the heat dissipation process, which affects the performance of the disks and makes disk mounting and maintenance inconvenient.

Method used

A structure comprising an array cabinet, partitions, air ducts, blowers, fixing plates, damping blocks, positioning plates, and sliding plates was designed. Uniform heat dissipation is achieved through the air ducts and blowers, and the disks are fixed and easily maintained through telescopic rods and positioning bolts.

Benefits of technology

It achieves uniform ventilation and heat dissipation, improves the heat dissipation performance of the disk, and also has the functions of stable disk fixation and convenient maintenance.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223977696U_ABST
Patent Text Reader

Abstract

The utility model provides a disk array device which comprises an array cabinet connected with a server, one side of the array cabinet is hinged with a cabinet door, a plurality of partition plates are fixed in the array cabinet, air ducts are arranged in the partition plates, an air blower is arranged on the array cabinet, a plurality of fixing plates are fixed in the array cabinet, damping blocks are arranged on the fixing plates, and the damping blocks are arranged on the fixing plates. A positioning plate is arranged on the damping block, a sliding plate is arranged on the positioning plate, a plurality of fixing structures are arranged in the array cabinet, and an auxiliary heat dissipation structure is arranged on the partition plate. According to the utility model, the auxiliary heat dissipation structure is arranged on the partition plate, the air duct is arranged in the partition plate, and the air blower is arranged on the array cabinet, so that a better ventilation and heat dissipation effect can be achieved, and a poor heat dissipation effect caused by the use of a plurality of disk arrays can be prevented; the damping block is arranged on the fixed plate, the positioning plate is arranged on the damping block, and the sliding plate is arranged on the positioning plate; the magnetic disk can be installed and fixed, and a certain damping effect can be achieved.
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Description

Technical Field

[0001] This utility model relates to the field of disk array device technology, specifically a disk array device. Background Technology

[0002] A disk array device is a technology that combines multiple independent hard drives into a logical disk group, aiming to improve the performance, reliability, and security of data storage. Disk arrays improve read and write speeds by distributing data across multiple hard drives and utilizing parallel operations of these drives. They also protect data from hardware failures through redundant configurations. A disk array server is a server based on RAID technology that combines multiple hard drives into a single logical storage unit, with the goal of improving storage performance, data reliability, and capacity.

[0003] For example, patent CN215416629U discloses a disk array housing device, including a housing box, a housing seat movably connected to the housing box inside a housing slot, and a locking mechanism disposed inside the housing slot for fixing the housing slot; the locking mechanism includes a fixing head disposed on the housing seat, and a locking head disposed inside the housing slot and connected to the fixing head; the locking head includes a locking pin fixed at one end to the slot wall directly opposite the opening of the housing slot, a locking buckle movably connected to a slot on the other end of the locking pin, and a first spring connecting the locking buckle and the bottom wall of the slot. However, in the array state, the disks are more tightly fitted, and traditional cooling fans may experience uneven heat dissipation during the heat dissipation process, resulting in poor disk heat dissipation and affecting disk use.

[0004] Therefore, this utility model provides a disk array device. Utility Model Content

[0005] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide a disk array device to solve the problems mentioned in the background art. This utility model can achieve better ventilation and heat dissipation, prevent poor heat dissipation caused by the use of multiple disk arrays; it can install and fix the disks, and can also provide a certain shock absorption effect. At the same time, one disk can be slid out individually for easy maintenance.

[0006] To achieve the above objectives, this utility model is implemented through the following technical solution: a disk array device, including an array cabinet connected to a server, a cabinet door hinged to one side of the array cabinet, multiple partitions fixed inside the array cabinet, air ducts opened in the partitions, a blower installed on the array cabinet, multiple fixing plates fixed inside the array cabinet, damping blocks installed on the fixing plates, positioning plates installed on the damping blocks, sliding plates installed on the positioning plates, multiple fixing structures installed inside the array cabinet, and auxiliary heat dissipation structures installed on the partitions.

[0007] Furthermore, a cavity is provided at the top of the array cabinet, which is connected to the air duct, and the air outlet of the blower is connected to the cavity.

[0008] Furthermore, the bottom of the array cabinet is fixed with multiple support legs, and the bottom of the array cabinet is provided with multiple air outlets, which are connected to the air duct.

[0009] Furthermore, the damping block is fixedly connected to the fixed plate and the positioning plate, and the positioning plate is slidably connected to the sliding plate.

[0010] Furthermore, the fixing structure includes multiple telescopic rods, which are fixedly connected to the fixing plate, and pressure plates are fixed to the ends of the telescopic rods.

[0011] Furthermore, the telescopic rod includes a first rod body and a second rod body, with a sliding groove inside the first rod body corresponding to the second rod body.

[0012] Furthermore, a spring is fixed between the slide and the second rod, and a positioning bolt is threaded onto one side of the first rod.

[0013] Furthermore, the auxiliary heat dissipation structure includes multiple heat-conducting blocks and multiple heat sinks, with the heat sinks located within the air duct.

[0014] The beneficial effects of this utility model are as follows: This utility model provides a disk array device, which includes a partition; an auxiliary heat dissipation structure; an air duct; an array cabinet; a blower; a fixing plate; a damping block; a positioning plate; and a sliding plate.

[0015] Installing auxiliary heat dissipation structures on the partitions, creating air ducts within the partitions, and installing blowers on the array cabinets can achieve better ventilation and heat dissipation, preventing poor heat dissipation caused by the use of multiple disk arrays. Installing damping blocks on the fixing plates, mounting positioning plates on the damping blocks, and installing sliding plates on the positioning plates can install and fix the disks, and also provide a certain degree of shock absorption. At the same time, one disk can be slid out individually for easy maintenance. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the overall assembly three-dimensional structure of a disk array device according to the present invention;

[0017] Figure 2 This is a schematic diagram of the assembly structure of the array cabinet and partition in a disk array device according to the present invention.

[0018] Figure 3 This is a schematic diagram of the assembly structure of the array cabinet, fixing plate, damping block, positioning plate and sliding plate in a disk array device according to the present invention.

[0019] Figure 4This is a schematic diagram of the overall assembly cross-sectional structure of a disk array device according to the present invention.

[0020] Figure 5 This is a schematic diagram of the assembly cross-sectional structure of the telescopic rod in a disk array device according to the present invention;

[0021] In the diagram: 1. Array cabinet; 2. Partition; 3. Blower; 4. Air duct; 5. Air outlet; 6. Fixing plate; 7. Damping block; 8. Positioning plate; 9. Sliding plate; 10. Pressure plate; 11. Heat-conducting block; 12. Heat sink; 13. Telescopic rod; 14. First rod body; 15. Second rod body; 16. Slide groove; 17. Spring; 18. Positioning bolt; 19. Support leg; 20. Cavity. Detailed Implementation

[0022] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.

[0023] Please see Figures 1 to 5 This utility model provides a technical solution: a disk array device, including an array cabinet 1 connected to a server, a cabinet door hinged to one side of the array cabinet 1, multiple partitions 2 fixed inside the array cabinet 1, air ducts 4 opened in the partitions 2, a blower 3 mounted on the array cabinet 1, multiple fixing plates 6 fixed inside the array cabinet 1, damping blocks 7 mounted on the fixing plates 6, positioning plates 8 mounted on the damping blocks 7, sliding plates 9 mounted on the positioning plates 8, multiple fixing structures installed inside the array cabinet 1, and auxiliary heat dissipation structures mounted on the partitions 2.

[0024] In this embodiment, a cavity 20 is provided at the top of the array cabinet 1, and the cavity 20 is connected to the air duct 4. The air outlet of the blower 3 is connected to the cavity 20. Multiple support legs 19 are fixed at the bottom of the array cabinet 1. Multiple air outlets 5 are provided at the bottom of the array cabinet 1, and the air outlets 5 are connected to the air duct 4. The auxiliary heat dissipation structure includes multiple heat-conducting blocks 11 and multiple heat sinks 12, and the heat sinks 12 are located inside the air duct 4.

[0025] Specifically, the blower 3 is turned on, causing it to blow air into the cavity 20. The air inside the cavity 20 is blown downwards along the air duct 4, thereby exchanging heat with the heat sink 12. The air is then blown out from the air outlet 5, which achieves a good heat dissipation effect. The heat conduction block 11 is in direct contact with the disk, thus achieving a good heat conduction effect and exchanging heat with the disk.

[0026] The damping block 7 is fixedly connected to the fixed plate 6 and the positioning plate 8. The positioning plate 8 is slidably connected to the sliding plate 9. The fixed structure includes multiple telescopic rods 13. The telescopic rods 13 are fixedly connected to the fixed plate 6. The ends of the telescopic rods 13 are fixed with pressure plates 10. The telescopic rods 13 include a first rod body 14 and a second rod body 15. A sliding groove 16 is opened in the first rod body 14. The sliding groove 16 corresponds to the second rod body 15. A spring 17 is fixed between the sliding groove 16 and the second rod body 15. A positioning bolt 18 is threadedly fitted on one side of the first rod body 14.

[0027] Specifically, the disk can be placed inside the sliding plate 9, and then the disk can be connected to the server. Under the action of the spring 17, the pressure plate 10 is pushed downward to position the disk. Then, the length of the telescopic rod 13 can be fixed by the positioning bolt 18 to fix the position of the pressure plate 10.

[0028] Rotate the positioning bolt 18 so that it no longer fixes the length of the telescopic rod 13. At this time, the sliding plate 9 can be pulled outward to pull out the disk.

[0029] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A disk array device comprising an array cabinet (1) connected to a server, characterized in that, The array cabinet (1) is hinged with a cabinet door on one side, a plurality of partitions (2) are fixed in the array cabinet (1), an air duct (4) is formed in the partition (2), a blower (3) is arranged on the array cabinet (1), a plurality of fixed plates (6) are fixed in the array cabinet (1), a damping block (7) is arranged on the fixed plate (6), a positioning plate (8) is arranged on the damping block (7), a sliding plate (9) is arranged on the positioning plate (8), a plurality of fixing structures are arranged in the array cabinet (1), and an auxiliary heat dissipation structure is arranged on the partition (2).

2. The disk array apparatus of claim 1, wherein: The array cabinet (1) is hinged with a cabinet door on one side, a plurality of partitions (2) are fixed in the array cabinet (1), an air duct (4) is formed in the partition (2), a blower (3) is arranged on the array cabinet (1), a plurality of fixed plates (6) are fixed in the array cabinet (1), a damping block (7) is arranged on the fixed plate (6), a positioning plate (8) is arranged on the damping block (7), a sliding plate (9) is arranged on the positioning plate (8), a plurality of fixing structures are arranged in the array cabinet (1), and an auxiliary heat dissipation structure is arranged on the partition (2).

3. The disk array apparatus of claim 1, wherein: The array cabinet (1) is hinged with a cabinet door on one side, a plurality of partitions (2) are fixed in the array cabinet (1), an air duct (4) is formed in the partition (2), a blower (3) is arranged on the array cabinet (1), a plurality of fixed plates (6) are fixed in the array cabinet (1), a damping block (7) is arranged on the fixed plate (6), a positioning plate (8) is arranged on the damping block (7), a sliding plate (9) is arranged on the positioning plate (8), a plurality of fixing structures are arranged in the array cabinet (1), and an auxiliary heat dissipation structure is arranged on the partition (2).

4. The disk array apparatus of claim 1, wherein: The damping block (7) is fixedly connected with the fixed plate (6) and the positioning plate (8), and the positioning plate (8) is slidably connected with the sliding plate (9).

5. The disk array apparatus of claim 1, wherein: The fixing structure comprises a plurality of telescopic rods (13), the telescopic rods (13) are fixedly connected with the fixed plate (6), and the end of the telescopic rod (13) is fixedly connected with a pressing plate (10).

6. The disk array apparatus of claim 5, wherein: The telescopic rod (13) comprises a first rod body (14) and a second rod body (15), a sliding groove (16) is formed in the first rod body (14), and the sliding groove (16) corresponds to the second rod body (15).

7. The disk array apparatus of claim 6, wherein: A spring (17) is fixed between the sliding groove (16) and the second rod body (15), and a positioning bolt (18) is threadedly connected to one side of the first rod body (14).

8. The disk array apparatus of claim 1, wherein: The auxiliary heat dissipation structure comprises a plurality of heat conduction blocks (11) and a plurality of heat dissipation fins (12), and the heat dissipation fins (12) are located in the air duct (4).

Citation Information

Patent Citations

  • Disk array accommodating device

    CN215416629U