Heat dissipation structure of solid state disk
By vertically mounting the hard drives and utilizing guide edges and hollow tube structures, the heat dissipation problem caused by hard drive stacking and obstruction was solved, achieving a more efficient heat dissipation effect.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- NANTONG HONGJUJING SEMICONDUCTOR TECHNOLOGY CO LTD
- Filing Date
- 2025-03-19
- Publication Date
- 2026-04-17
AI Technical Summary
In existing technologies, the method of stacking solid-state drives (SSDs) horizontally causes the upper SSDs to block the lower SSDs, resulting in reduced heat dissipation for the lower SSDs.
The system employs a vertical hard drive installation and utilizes a guide edge and hollow tube structure. The guide edge bends towards the hard drive to direct cool air, and is combined with a hollow tube and fan system for heat dissipation. The hollow tube is designed with the hard drive mounting base and slot base to increase the spacing between hard drives and improve airflow.
By using vertical installation and guide edge design, the heat dissipation effect of the hard drive is improved, the obstruction area is reduced, the cooling air is guided to the surface of the hard drive for heat dissipation, and the overall heat dissipation efficiency is improved.
Smart Images

Figure CN224137907U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of hard disk technology, specifically to a heat dissipation structure for solid-state drives. Background Technology
[0002] The data storage device contains multiple solid-state drives (SSDs) for storing data. The SSDs are installed flat inside the data storage device. When the data storage device is working, the cooling fan turns on to expel heat from the device. However, during the heat dissipation process, due to the stacked arrangement of the SSDs, the upper SSDs block the lower SSDs, resulting in reduced heat dissipation for the lower SSDs. Utility Model Content
[0003] The technical problem to be solved by this utility model is to provide a solid-state drive heat dissipation structure to address the shortcomings of the prior art.
[0004] To solve the above-mentioned technical problems, the technical solution adopted by this utility model is as follows:
[0005] A solid-state drive (SSD) heat dissipation structure includes uniformly arranged hollow tubes, a hard drive mounting bracket installed between the hollow tubes, guide edges on both sides of the hard drive mounting bracket, a hard drive mounting groove formed between the guide edges, slot seats connected to both sides of the hard drive mounting groove, the hard drive being vertically inserted into the slot seats, a gap between the hard drive and the guide edges, an opening machined on the hollow tubes, the opening communicating with the gap between the hard drive and the guide edges, and the guide edges being bent toward the hard drive side.
[0006] Furthermore, the hard disk mounting base has connecting edges at both ends, and a slot is provided between the connecting edges and the guide edge to accommodate the hollow tube. The hollow tube is inserted into the slot, and the connecting edges are connected to the side of the hollow tube by screws.
[0007] Furthermore, the hollow tube is a hollow square tube.
[0008] Furthermore, an elastic piece is connected inside the slot, which secures the hard drive.
[0009] Furthermore, the angle between the guide edge and the hard disk mounting base is 85° to 88°.
[0010] Compared with the prior art, the solid-state drive heat dissipation structure of this utility model adopts a vertical installation method to connect the hard drive in the storage device, reducing the area of obstruction. At the same time, the guide edge has a wind guiding function, allowing cool air to blow to its outer surface, thereby improving the heat dissipation effect. Attached Figure Description
[0011] Figure 1 This is a schematic diagram of the structure of this utility model;
[0012] Figure 2yes Figure 1 Sectional view at point AA;
[0013] Figure 3 yes Figure 1 Sectional view at point BB;
[0014] Figure 4 This is a schematic diagram of the hard disk installation structure inside the storage device of this utility model;
[0015] Figure 5 This is a schematic diagram of the arrangement of each layer of hard drives in this utility model;
[0016] Among them, 1. hollow tube, 2. hard disk mounting bracket, 3. guide edge, 4. connecting edge, 5. slot base, 6. heat dissipation hole, 7. elastic sheet, 8. opening, 9. connecting tube, 10. air inlet box, 11. fan. Detailed Implementation
[0017] The technical solutions in the embodiments of this utility model will be clearly and completely described below.
[0018] like Figures 1-3 As shown, a solid-state drive heat dissipation structure includes uniformly arranged hollow tubes 1, a hard drive mounting bracket 2 installed between the hollow tubes 1, guide edges 3 on both sides of the hard drive mounting bracket 2, and connecting edges 4 at both ends of the hard drive mounting bracket 2. A slot is provided between the connecting edge 4 and the guide edge 3 to accommodate the hollow tubes. In this embodiment, the hollow tubes 1 are hollow square tubes, which are inserted into the slots. The connecting edges 4 are connected to the side of the hollow square tubes by screws.
[0019] A hard disk mounting groove is formed between the guide edges 3. Slot seats 5 are connected to both sides of the hard disk mounting groove. The hard disk 6 is vertically inserted into the slot seat 5. An elastic piece 7 is connected inside the slot seat 5. The elastic piece 7 is bent inside the slot seat 5 and has an angle of 15° with the slot seat 5. After the hard disk is inserted, the elastic piece 7 locks the hard disk 6 in place. There is a gap between the hard disk 6 and the guide edge 3. An opening 8 is machined on the hollow tube 1. The opening 8 communicates with the gap between the hard disk 6 and the guide edge 3. The guide edge 3 is bent toward the side of the hard disk 6.
[0020] In this embodiment, the angle between the guide edge 3 and the hard disk mounting base 2 is 85-88°. In this way, the guide edge 3 plays a certain role in guiding the air. The cold air blown out from the gap between the hard disk 6 and the guide edge 3 blows towards the surface of the hard disk along the guide angle of the guide edge 3, so that both sides of the hard disk can dissipate heat at the same time.
[0021] like Figure 4 and Figure 5As shown, the storage device contains multiple solid-state drives (SSDs). Each SSD is installed in an alternating manner on a hollow tube 1, and the upper and lower SSDs are also installed in an alternating manner. This increases the distance between the upper and lower SSDs, allowing heat to flow. A connecting pipe 9 is provided on the side of the hollow tube 1, which connects each hollow tube 1 to the others. The connecting pipe 9 is also a hollow square tube. The connecting pipe 9 is connected to an air inlet box 10 through a pipe. A fan 11 is installed on the air inlet box 10. After the fan 11 draws in cold air, it passes through the air inlet box 10 and the connecting pipe 9, and delivers the cold air into the hollow tube 1. The cold air enters the gap between the hard drive 6 and the guide edge 3 from the opening of the hollow tube 1, dissipating heat from the surface of the hard drive.
[0022] This utility model is not limited to the embodiments described. Those skilled in the art can still make some modifications or changes without departing from the spirit and scope of this utility model. Therefore, the scope of protection of this utility model shall be determined by the scope defined in the claims.
Claims
1. A solid state drive heat dissipation structure, characterized in that: The device includes evenly arranged hollow tubes, with hard drive mounting brackets installed between the hollow tubes. Guide edges are provided on both sides of the hard drive mounting brackets, forming a hard drive mounting groove between the guide edges. Slot seats are connected to both sides of the hard drive mounting groove, and the hard drive is vertically inserted into the slot seats. A gap is left between the hard drive and the guide edges. An opening is machined on the hollow tube, which communicates with the gap between the hard drive and the guide edges. The guide edges are bent towards the hard drive side.
2. The solid state drive heat dissipation structure of claim 1, wherein: The hard disk mounting bracket has connecting edges at both ends, and a slot is provided between the connecting edges and the guide edge to accommodate the hollow tube. The hollow tube is inserted into the slot, and the connecting edges are connected to the side of the hollow tube by screws.
3. The heat dissipation structure of a solid state drive according to claim 1 or 2, characterized in that: The hollow tube is a hollow square tube.
4. The solid state drive heat dissipation structure of claim 1, wherein: An elastic plate is connected inside the slot, and the elastic plate secures the hard drive.
5. The solid state drive heat dissipation structure of claim 1, wherein: The angle between the guide edge and the hard disk mounting bracket is 85° to 88°.