Artificial intelligence big data storage device
By combining a tapered air outlet duct design with a detachable filter structure, the problem of low heat dissipation efficiency in existing air-cooled systems is solved, achieving efficient heat dissipation and stable equipment operation, and extending the service life of storage equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHANXI QUANYUN PLATFORM BIG DATA CO LTD
- Filing Date
- 2025-05-09
- Publication Date
- 2026-05-29
AI Technical Summary
Existing air-cooling systems have low heat dissipation efficiency, leading to chip frequency reduction, storage media lifespan degradation, and even system crashes, failing to meet the heat dissipation requirements of massive data processing.
The heat dissipation component adopts a tapered air outlet design, combined with a temperature sensor and control board. Through the cooperation of the fan and air outlet, it achieves efficient heat dissipation and is equipped with a removable filter structure for easy cleaning, improving heat dissipation efficiency and equipment reliability.
It improves the cooling efficiency of the heat sink, extends the service life of the storage tray, reduces noise, ensures stable operation of the equipment under high load, and simplifies the maintenance process of the filter.
Smart Images

Figure CN224304363U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of data storage, and in particular relates to an artificial intelligence big data storage device. Background Technology
[0002] Against the backdrop of the convergence of artificial intelligence and big data technologies, data storage devices are facing unprecedented performance challenges. With the increasing demand for real-time processing of massive amounts of data, storage devices need to operate at high speeds and process the data. During data processing, storage devices generate heat. Existing air-cooling systems use fans to blow air onto the heat sinks in the storage devices to dissipate heat, which is inefficient and can lead to chip frequency reduction, degradation of storage media lifespan, and even system crashes. Utility Model Content
[0003] The purpose of this invention is to provide an artificial intelligence big data storage device to solve the technical problems mentioned in the background.
[0004] To achieve the above objectives, the specific technical solution of this utility model for an artificial intelligence big data storage device is as follows:
[0005] An artificial intelligence big data storage device includes a housing, a heat dissipation assembly disposed within the housing, and a storage disk disposed within the housing. The housing includes a body, a detachable front cover at one end of the housing, and a detachable rear cover at the other end of the housing. Heat sink fins are distributed between the front and rear covers. An installation opening is provided on the front cover between adjacent heat sink fin fins, through which the storage disk is inserted into the housing. Air vents are provided on both sides of the housing, and filters are provided at the air vent locations on each side of the housing. The heat dissipation assembly includes a fan disposed within the housing, with the fan corresponding to the air vent. An exhaust duct, smaller than the fan, is located on one side of the fan, and the exhaust duct is connected to the fan via a connecting cylinder.
[0006] Furthermore, a mounting ring is rotatably mounted on the fan, and a connecting cylinder is connected to the mounting ring. A support plate is located inside the mounting ring, and fan blades are mounted on the support plate via a connecting shaft.
[0007] Furthermore, a fixing frame is provided on the outer wall of the housing below the air outlet, and the fixing frame has an installation groove for installing the filter screen, and a buckle for fixing the filter screen is provided on the outer wall of the housing above the air outlet.
[0008] Furthermore, the latch includes a rotating shaft mounted on the housing and a locking plate mounted on the rotating shaft.
[0009] The artificial intelligence big data storage device of this utility model has the following advantages:
[0010] 1. This utility model has an air outlet pipe on the connecting cylinder that is smaller than the fan. When the fan pushes the outside air through the air outlet pipe, the airflow speed will be accelerated, thereby reducing the air temperature. The reduced air will accelerate the cooling efficiency of the heat sink, prevent the storage disk from overheating, and increase the service life of the storage disk.
[0011] 2. This utility model allows for the detachable installation of the filter screen on the housing, which facilitates the cleaning of the filter screen and saves on the efficiency of disassembling and assembling the filter screen. Attached Figure Description
[0012] Figure 1 This is a schematic diagram of the structure of an artificial intelligence big data storage device according to the present invention;
[0013] Figure 2 This is a schematic diagram of the housing, heat sink, and fan of this utility model;
[0014] Figure 3 This is a schematic diagram of the fan, connecting cylinder, air outlet, support plate, and fan blades of this utility model;
[0015] Figure 4 This is a schematic diagram of the fixing frame, filter screen and card plate of this utility model.
[0016] Explanation of markings in the diagram:
[0017] 1. Housing; 2. Front cover; 3. Rear cover; 4. Air vent; 5. Mounting port; 6. Storage tray; 7. Heat sink assembly; 8. Fan; 9. Mounting ring; 10. Connecting cylinder; 11. Air outlet duct; 12. Support plate; 13. Fan blade; 14. Fixing frame; 15. Mounting slot; 16. Filter screen; 17. Clamping plate. Detailed Implementation
[0018] To better understand the purpose, structure, and function of this utility model, the following description, in conjunction with the accompanying drawings, provides a more detailed account of an artificial intelligence big data storage device.
[0019] like Figures 1 to 4As shown, this utility model discloses an artificial intelligence big data storage device, including a housing, a heat dissipation component disposed within the housing body 1, and a storage disk 6 disposed within the housing body 1. The heat dissipation component effectively cools the storage disk 6, preventing damage to its electronic components due to excessive temperature during operation. Specifically, the housing includes the housing body 1, a detachable front cover 2 disposed at one end of the housing body 1, and a detachable rear cover 3 disposed at the other end of the housing body 1. A heat dissipation fin assembly 7 is distributed between the front cover 2 and the rear cover 3. The heat generated by the storage disk 6 during operation is quickly transferred to the heat dissipation fin assembly 7 distributed on the inner wall of the housing body 1. The heat dissipation fin assembly 7 is arranged in a rectangular array, which increases the heat dissipation area, allowing the heat dissipation fin assembly 7 to better dissipate heat from the storage disk 6. An installation port 5 is also provided on the front cover 2 between adjacent heat dissipation fin assemblies 7, through which the storage disk 6 is inserted into the housing body 1, facilitating the installation and removal of the storage disk 6 from the housing.
[0020] Air vents 4 are located on both sides of the housing 1, and filters 16 are installed at the air vents 4 on each housing 1. Outside air can enter the housing 1 through the air vents 4 to dissipate heat from the storage disk 6 and the heat sink. The air entering the housing 1 is filtered by the filters 16 to prevent dust from entering the housing 1 and affecting the internal electronic components. The heat dissipation component for rapid heat dissipation of the heat sink includes a fan 8 located inside the housing 1 and connected to an external power supply. The fan 8 is positioned corresponding to the air vents 4, and an exhaust pipe 11, smaller than the fan 8, is located on one side of the fan 8. The exhaust pipe 11 is connected to the fan 8 via a connecting tube 10. Specifically, after the fan 8 is started, external cold air is drawn into the housing 1 after being filtered for dust by the filters 16. The external cold air flows through the exhaust pipe 11 and is directed to the gaps in the heat sink assembly 7, thereby achieving the effect of cooling the heat sink. The connecting cylinder 10 adopts a tapered structure design. When the airflow generated by the fan 8 passes through the connecting cylinder 10, it creates a Venturi effect from the outlet of the fan 8 to the inlet of the exhaust pipe 11, which increases the airflow speed and decreases the airflow temperature. At this time, the airflow discharged from the exhaust pipe 11 rapidly cools the heat sink assembly 7, thereby improving the cooling efficiency of the heat sink assembly 7.
[0021] It should be noted that a temperature sensor can also be installed inside the casing to monitor the temperature of the storage disk 6 in real time, and a control board can be installed on the casing. The control board is connected to the fan 8. Under low load, the fan speed of the fan 8 is reduced to save energy and reduce noise. Under high load, the control board controls the fan 8 to run at full speed to ensure heat dissipation.
[0022] Preferably, the fan 8 is rotatably equipped with a mounting ring 9, and the connecting cylinder 10 is connected to the mounting ring 9. Simultaneously, a support plate 12 is located inside the mounting ring 9, and fan blades 13 are mounted on the support plate 12 via a connecting shaft. The fan 8 blows the fan blades 13, which drive the connecting ring to rotate via the connecting shaft and the support plate 12. The rotation of the connecting ring also drives the air outlet pipe 11 to rotate via the connecting cylinder 10. The rotation of the air outlet pipe 11 increases the airflow range, further improving the cooling efficiency of the fan 8 on the storage tray 6.
[0023] To facilitate the disassembly, assembly, and cleaning of the filter 16, a fixing frame 14 is provided on the outer wall of the housing 1 below the air vent 4. The fixing frame 14 has an installation groove 15 for installing the filter 16, and a buckle for securing the filter 16 is provided on the outer wall of the housing 1 above the air vent 4. The buckle consists of a rotating shaft rotatably mounted on the housing 1 and a locking plate 17 mounted on the rotating shaft. To remove the filter 16, simply move the locking plate 17; the locking plate 17 rotates via the rotating shaft, and after the locking plate 17 disengages from the filter 16, the filter 16 can be removed from the installation groove 15 of the fixing frame 14. Similarly, to install the filter 16, simply insert the filter 16 into the installation groove 15 of the fixing frame 14. The installation groove 15 provides precise positioning of the filter 16. Then, rotate the locking plate 17 to block the filter 16. Of course, a rubber sealing strip can also be provided on the inner wall of the clamping plate 17. The rubber sealing strip adheres to the filter screen 16, which can increase the connection stability of the clamping plate 17 to the filter screen 16. It should be noted that there is friction between the rotating shaft and the housing 1. The clamping plate 17 will not rotate when it is not subjected to external force.
[0024] Instructions for use: Insert the filter screen 16 into the mounting slot 15 of the fixing frame 14, ensuring that the top of the filter screen 16 is flush against the outer wall of the housing 1 for positioning. Then, move the retaining plate 17 to press the filter screen 16 into place and position it. At this point, the filter screen 16 is securely fixed. To cool the storage disk 6, the fan 8 can be activated. The fan 8 blows outside air through the connecting cylinder 10 and the exhaust pipe onto the heat sink, thereby cooling the storage disk 6.
[0025] It is understood that this utility model has been described through some embodiments, and those skilled in the art will recognize that various changes or equivalent substitutions can be made to these features and embodiments without departing from the spirit and scope of this utility model. Furthermore, under the teachings of this utility model, these features and embodiments can be modified to adapt to specific situations and materials without departing from the spirit and scope of this utility model. Therefore, this utility model is not limited to the specific embodiments disclosed herein, and all embodiments falling within the scope of the claims of this application are within the protection scope of this utility model.
Claims
1. An artificial intelligence big data storage device, characterized in that: Includes a cover, a heat dissipation assembly disposed within the housing (1), and a storage disk (6) disposed within the housing (1); The housing includes a housing body (1), a front cover (2) detachably disposed at one end of the housing body (1), and a rear cover (3) detachably disposed at the other end of the housing body (1). A heat sink assembly (7) is distributed between the front cover (2) and the rear cover (3). An installation port (5) is opened on the front cover (2) between adjacent heat sink assemblies (7). The storage disk (6) is inserted into the housing body (1) through the installation port (5). Air vents (4) are provided on both sides of the shell (1), and a filter screen (16) is provided on each shell (1) at the position of the air vent (4); The heat dissipation assembly includes a fan (8) housed in the housing (1), the fan (8) and the air vent (4) are arranged in correspondence, and an air outlet pipe (11) smaller than the fan (8) is provided on one side of the fan (8), and the air outlet pipe (11) and the fan (8) are connected by a connecting tube (10).
2. The artificial intelligence big data storage device according to claim 1, characterized in that: The fan (8) is rotatably provided with a mounting ring (9), and the connecting cylinder (10) is connected to the mounting ring (9); A support plate (12) is provided inside the mounting ring (9), and a fan blade (13) is provided on the support plate (12) via a connecting shaft.
3. The artificial intelligence big data storage device according to claim 2, characterized in that: The outer wall of the shell (1) is provided with a fixing frame (14) below the air vent (4), and the fixing frame (14) has an installation groove (15) for installing the filter screen (16), and a buckle for fixing the filter screen (16) is provided on the outer wall of the shell (1) above the air vent (4).
4. The artificial intelligence big data storage device according to claim 3, characterized in that: The buckle includes a rotating shaft rotatably mounted on the housing (1) and a locking plate (17) mounted on the rotating shaft.