Internet of Things big data storage device

By introducing a ring-shaped cover plate, heat dissipation mesh, and motor-driven mode switching into the IoT big data storage device, combined with a cooling fan, the problems of untimely heat dissipation and dust ingress are solved, thereby improving the device's heat dissipation efficiency and hardware lifespan.

CN223927078UActive Publication Date: 2026-02-17HEBEI LINGCAN TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202520002336.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-02
Publication Date
2026-02-17
Estimated Expiration
2035-01-02

AI Technical Summary

Technical Problem

The heat generated by IoT big data storage devices during operation cannot be dissipated in time, leading to overheating, which affects performance and lifespan. At the same time, dust entering the device will hinder heat dissipation and affect hardware performance and lifespan.

Method used

An IoT big data storage device was designed, which uses a ring-shaped cover plate and a ring-shaped heat dissipation mesh combined with a motor drive to achieve the switching between heat dissipation during operation and cover during non-operation. It works in conjunction with a cooling fan for continuous heat dissipation, and uses a ring-shaped fixing block and a slotted structure to prevent dust from entering.

Benefits of technology

It achieves effective heat dissipation during equipment operation, maintains a safe temperature, improves the operational stability and hardware lifespan of the equipment, and prevents dust from entering and accumulating when the equipment is not in operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses Internet of Things big data storage equipment which comprises a base, a shell is fixedly connected to the upper portion of the base, a first annular fixing block is fixedly connected to the end, close to the base, of the side face of the shell, a first open groove is formed in the first annular fixing block, and a notch is formed in the upper portion of the first open groove. By arranging an annular covering plate, an annular heat dissipation net, a heat dissipation opening, a first annular fixing block, a second annular fixing block, a first open groove, a second open groove, a sliding rod, a pulley, a motor, an L-shaped connecting rod, a rotating shaft and a fixing disc, the motor drives the L-shaped connecting rod to rotate, so that flexible adjustment between a heat dissipation mode during working and a covering mode during non-working is achieved; the heat dissipation is facilitated, dust is not easy to enter during the non-working period, a fixing block, a first heat dissipation fan, a second heat dissipation fan and a heat dissipation opening are arranged, the effect of continuously dissipating heat of equipment in the working process is achieved, it is ensured that the equipment can keep a safe temperature in the working process, and the working stability of the equipment is improved.
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Description

Technical Field

[0001] This utility model relates to the field of big data storage devices, specifically an Internet of Things (IoT) big data storage device. Background Technology

[0002] With the rise of the Internet of Things (IoT), a large number of devices such as sensors and smart meters are continuously generating massive amounts of data. Traditional data storage technologies struggle to handle this scale of data. In terms of storage architecture, it has gradually evolved from early Direct Attached Storage (DAS) to Network Attached Storage (NAS) and Storage Area Networks (SAN). NAS provides file-level storage services through network protocols, allowing multiple users to easily share files. SAN, on the other hand, provides block-level storage and is more suitable for applications with high data read / write performance requirements.

[0003] If the heat generated by IoT big data storage devices cannot be dissipated in a timely manner, it will have many adverse effects. Overheating will cause the storage device to operate at a slower speed. For example, high temperatures may reduce the positioning accuracy of the hard drive's read / write head, thereby increasing the data read / write error rate and prolonging the read / write time. For solid-state drives (SSDs), overheating may trigger a frequency reduction protection mechanism, significantly slowing down read / write speeds. Secondly, the hardware lifespan will be shortened. Prolonged high-temperature environments will accelerate the aging of electronic components.

[0004] When dust gets into IoT big data storage devices, it can have a series of adverse effects. On the hardware side, dust can accumulate on the circuit boards of the storage device. Excessive dust can hinder heat dissipation because dust is a poor conductor of heat, causing localized temperature increases and affecting device performance and lifespan, as seen in the overheating issue mentioned earlier. For hard drives with mechanical components, dust entering the drive can affect the normal operation between the read / write heads and the platters. Utility Model Content

[0005] The purpose of this invention is to provide an Internet of Things (IoT) big data storage device to solve the problem that the heat generated by the big data storage device during operation cannot be dissipated in a timely manner.

[0006] To achieve the above objectives, an Internet of Things (IoT) big data storage device is provided, including a base, a housing fixedly connected to the top of the base, an annular fixing block 1 fixedly connected to one end of the side of the housing near the base, the annular fixing block 1 having a slot 1 inside, the slot 1 having a groove above the slot 1, and an annular fixing block 2 fixedly connected to one end of the side of the housing near the top, the annular fixing block 2 having a slot 2 inside, the slot 2 having a groove downward.

[0007] Two annular cover plates are movably connected between the slots, and two annular heat dissipation meshes are fixedly connected between the two annular cover plates. Several fixing blocks are fixedly connected to the upper and lower ends of the annular cover plates and annular heat dissipation meshes. A sliding rod is fixedly connected to one end of each fixing block in slot one and slot two, and pulleys are rotatably connected to both ends of the sliding rod.

[0008] According to the aforementioned Internet of Things big data storage device, a motor compartment is provided inside the housing, and a motor is fixedly connected to the middle of the motor compartment.

[0009] According to the aforementioned Internet of Things big data storage device, a rotating shaft is fixedly connected to the output end of the motor, and a fixed disc is fixedly connected to the rotating shaft through the housing and upwards.

[0010] According to the IoT big data storage device, four L-shaped connecting rods are fixedly connected to the side of the fixed disk, and the other ends of two of the L-shaped connecting rods are fixedly connected to the annular cover plate.

[0011] According to the IoT big data storage device, a fixing plate is fixedly connected inside the housing, and a cooling fan 1 and a cooling fan 2 are disposed through the fixing plate.

[0012] According to the aforementioned Internet of Things big data storage device, a storage box is fixedly connected inside the housing, and a plurality of hard drives are installed inside the storage box.

[0013] According to the aforementioned Internet of Things big data storage device, two heat dissipation vents are provided on the side of the housing, and the heat dissipation vents cooperate with an annular heat dissipation mesh and an annular cover plate.

[0014] According to the aforementioned IoT big data storage device, four support legs are fixedly connected to the lower end of the base, and a USB interface is fixedly connected to the lower end of the base.

[0015] Compared with the prior art, the beneficial effect of this utility model is that it solves the problem that the heat generated by the big data storage device cannot be dissipated in time during operation.

[0016] This utility model comprises: an annular cover plate, an annular heat dissipation mesh, a heat dissipation vent, an annular fixing block one, an annular fixing block two, a slot one, a slot two, a sliding rod, a pulley, a motor, an L-shaped connecting rod, a rotating shaft, and a fixed disc. The motor drives the L-shaped connecting rod to rotate, causing the annular cover plate and the annular heat dissipation mesh to move relative to each other in slot one and slot two. This allows them to cooperate with the heat dissipation vent, achieving flexible adjustment between heat dissipation during operation and covering during non-operation. This facilitates heat dissipation and prevents dust from entering during non-operation periods.

[0017] This utility model, by incorporating a fixing block, a cooling fan (first type), a cooling fan (second type), and a heat dissipation vent, achieves continuous heat dissipation for the equipment during operation, ensuring that the equipment maintains a safe temperature and improving its operational stability.

[0018] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description

[0019] The present invention will be further described below with reference to the accompanying drawings and embodiments;

[0020] Figure 1 This is a three-dimensional structural diagram of an Internet of Things (IoT) big data storage device according to this utility model;

[0021] Figure 2 This is a split view of the back of an Internet of Things big data storage device according to the present invention;

[0022] Figure 3 This is a split view of the heat dissipation mesh structure of an Internet of Things big data storage device according to this utility model;

[0023] Figure 4 This utility model relates to an Internet of Things (IoT) big data storage device. Figure 3 Enlarged view of A in the middle;

[0024] Figure 5 This is a front-view split view of an Internet of Things (IoT) big data storage device according to this utility model.

[0025] In the diagram: 1. Base; 2. Support leg; 3. Annular fixing block one; 4. USB interface; 5. L-shaped connecting rod; 6. Fixing disc; 7. Rotating shaft; 8. Housing; 9. Annular fixing block two; 10. Annular heat dissipation mesh; 11. Annular cover plate; 12. Slot one; 13. Cooling fan one; 14. Fixing plate; 15. Cooling fan two; 16. Motor compartment; 17. Motor; 18. Slot two; 19. Fixing block; 20. Slide rod; 21. Pulley; 22. Hard drive; 23. Storage box; 24. Heat dissipation vent. Detailed Implementation

[0026] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of the present utility model.

[0027] Please see Figure 1-5This utility model provides a technical solution: an Internet of Things big data storage device, including a base 1, a housing 8 fixedly connected above the base 1, an annular fixing block 3 fixedly connected to one end of the side of the housing 8 near the base 1, a slot 12 is provided inside the annular fixing block 3, a slot opening is provided above the slot 12, and an annular fixing block 9 fixedly connected to one end of the side of the housing 8 near the top, a slot 18 is provided inside the annular fixing block 9, a slot opening is provided downwards in the slot 18;

[0028] Two annular cover plates 11 are movably connected between the slots, and two annular heat dissipation meshes 10 are fixedly connected between the two annular cover plates 11. The annular heat dissipation meshes 10 mainly dissipate heat through heat conduction and heat convection. Heat conduction refers to the transfer of heat from a high-temperature part to a low-temperature part. When air flows through the annular heat dissipation meshes 10, heat is transferred from the annular heat dissipation meshes 10 to the air, thereby reducing the temperature of the annular heat dissipation meshes 10 and achieving a continuous heat dissipation effect. Several fixing blocks 19 are fixedly connected to the upper and lower ends of the annular cover plates 11 and the annular heat dissipation meshes 10. A sliding rod 20 is fixedly connected to one end of the fixing block 19 within the slot 12 and the slot 28. The two ends of the sliding rod 20 are rotatably connected to pulleys 21. The installation of pulleys 21 is primarily for ease of movement. For moving the annular cover plates 11 and the annular heat dissipation meshes 10, the pulleys 21 allow the entire device to be moved easily, saving manpower and time, and thus enabling the device to be moved to the corresponding position quickly.

[0029] The housing 8 contains a motor compartment 16, with a motor 17 fixedly connected to its center. A rotating shaft 7 is fixedly connected to the output end of the motor 17. The rotating shaft 7 passes through the housing 8 and is fixedly connected to a fixed disc 6. Four L-shaped connecting rods 5 are fixedly connected to the side of the fixed disc 6. The other ends of two of the L-shaped connecting rods 5 are fixedly connected to an annular cover plate 11. A fixed plate 14 is fixedly connected inside the housing 8. A cooling fan 13 and a cooling fan 2 15 are mounted through the fixed plate 14. The cooling fans primarily utilize the motor to drive the fan blades to rotate, thus achieving heat dissipation. When the motor is powered on, the rotor begins to rotate, driving the connected fan blades to rotate. The rotation of the fan blades creates airflow. When used for heat dissipation, it blows cool air towards the heat source, while simultaneously promoting convection circulation between the surrounding hot and cool air. As hot air is blown away, new cool air continuously replenishes it, thus continuously removing heat and effectively cooling the equipment.

[0030] A storage box 23 is fixedly connected inside the housing 8. Several hard drives 22 are installed inside the storage box 23. Each hard drive 22 mainly consists of platters, read / write heads, a motor, and control circuitry. During operation, the platters rotate at high speed driven by the motor, and the read / write heads perform data reading and writing operations on the rapidly rotating platters according to instructions from the control circuitry. The platters have a magnetic coating. Data is stored in binary form by changing the magnetic pole direction of the magnetic coating on the platter using the read / write heads. When reading data, the read / write heads detect the magnetic pole direction and convert it into an electrical signal that the computer can recognize. Two heat dissipation vents 24 are opened on the side of the housing 8. The heat dissipation vents 24 cooperate with a ring-shaped heat dissipation mesh 10 and a ring-shaped cover plate 11. Four support legs 2 are fixedly connected to the lower end of the base 1, and a USB interface 4 is also fixedly connected to the lower end of the base 1. This setup uses motor 17 to drive L-shaped connecting rod 5 to rotate, causing the annular cover plate 11 and annular heat dissipation mesh 10 to move relative to each other in slot 12 and slot 2 18, thereby cooperating with heat dissipation vent 24 to achieve flexible adjustment between heat dissipation during operation and covering during non-operation, which facilitates heat dissipation and ensures that dust does not easily enter during non-operation periods.

[0031] Working principle: When the data storage device is working, the start motor 17 drives the fixed disk 6 on the rotating shaft 7 to rotate. The fixed disk 6 drives the annular cover plate 11 and the annular heat dissipation mesh 10 to rotate through the L-shaped connecting rod 5, so that the annular heat dissipation mesh 10 and the heat dissipation vent 24 are engaged. At this time, the cooling fan 13 and the cooling fan 25 are started to dissipate heat from the device. When the device stops working, the cooling fan 13 and the cooling fan 25 are turned off first, and then the motor 17 is started to drive the fixed disk 6 on the rotating shaft 7 to rotate. The fixed disk 6 drives the annular cover plate 11 and the annular heat dissipation mesh 10 to rotate through the L-shaped connecting rod 5, so that the annular cover plate 11 and the heat dissipation vent 24 are engaged, so that the heat dissipation vent 24 is covered to prevent dust from entering the device. The hard drive 22, which is used to store large amounts of information, is installed in the storage box 23. The external reading device is connected to the storage device through the USB interface 4. This setting allows the device to flexibly adjust between the heat dissipation mode when working and the covering mode when not working, which facilitates heat dissipation and ensures that dust does not easily enter during non-working periods.

[0032] The embodiments of the present utility model have been described in detail above with reference to the accompanying drawings. However, the present utility model is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present utility model.

Claims

1. An Internet of Things big data storage device comprising a base (1), characterized in that, A housing (8) is fixedly connected above the base (1). A ring-shaped fixing block (3) is fixedly connected to one end of the side of the housing (8) near the base (1). A slot (12) is provided inside the ring-shaped fixing block (3). A slot opening is provided above the slot (12). A ring-shaped fixing block (9) is fixedly connected to one end of the side of the housing (8) near the top. A slot (18) is provided inside the ring-shaped fixing block (9). A slot opening is provided downwards in the slot (18). Two annular cover plates (11) are movably connected between the slots. Two annular heat dissipation meshes (10) are fixedly connected between the two annular cover plates (11). Several fixing blocks (19) are fixedly connected to the upper and lower ends of the annular cover plates (11) and the annular heat dissipation meshes (10). A sliding rod (20) is fixedly connected to one end of the fixing block (19) in the slot one (12) and the slot two (18). A pulley (21) is rotatably connected to both ends of the sliding rod (20).

2. The IoT big data storage device of claim 1, wherein, The housing (8) has a motor compartment (16) inside, and a motor (17) is fixedly connected to the middle of the motor compartment (16).

3. The IoT big data storage device of claim 2, wherein: The output end of the motor (17) is fixedly connected to a rotating shaft (7), and the rotating shaft (7) passes through the housing (8) and is fixedly connected to a fixed disc (6) upwards.

4. The Internet of Things big data storage device as described in claim 3, characterized in that, The fixed disc (6) has four L-shaped connecting rods (5) fixedly connected to its side, and the other ends of two of the L-shaped connecting rods (5) are fixedly connected to the annular cover plate (11).

5. The Internet of Things big data storage device as described in claim 1, characterized in that, A fixing plate (14) is fixedly connected inside the housing (8), and a cooling fan (13) and a cooling fan (15) are installed through the fixing plate (14).

6. The Internet of Things big data storage device as described in claim 1, characterized in that, A storage box (23) is fixedly connected inside the housing (8), and several hard disks (22) are installed inside the storage box (23).

7. The Internet of Things big data storage device as described in claim 1, characterized in that, The housing (8) has two heat dissipation vents (24) on its side, which are in conjunction with the annular heat dissipation mesh (10) and the annular cover plate (11).

8. The Internet of Things big data storage device as described in claim 1, characterized in that, The base (1) is fixedly connected to four support legs (2) at its lower end, and a USB interface (4) is fixedly connected to the lower end of the base (1).