Solid state hard disk case with improved heat insulation and dissipation performance
Patent Information
- Application Number
- CN202522255877.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-24
- Publication Date
- 2026-08-18
- Estimated Expiration
- 2035-10-24
AI Technical Summary
[0002]固态硬盘是以硬盘为存储介质,计算机之间交换大容量数据,是一种强调便携性的移动存储产品,固态硬盘多传输速度较快的接口,可以较高的速度与系统进行数据传输,一般来说,固态硬盘一般要求盒子体积小、重量轻,目前市场上硬盘盒在使用时,在进行数据储存以及数据传输的过程中,通常会发出大量的热量,较高的热量将会影响硬盘使用的性能,在使用的过程中,也会由于热传递的效应使得硬盘所产生的热量被传递到其他的部件之上,从而影响其他部件的运行效率,目前对于固态硬盘大多是采用胶套的方式进行隔热,从而避免在热量传递影响其他部件的正常运行,但是,在散热结构方面并没有较好的改善
在硬盘的装配过程中,硬盘通过卡接或者嵌入的方式装配在内壳的安装腔之内,从而能够通过保硬盘盒进行防护,防止出现磕碰对硬盘造成损伤等情况的出现,在硬盘使用的过程中,由于数据的传输使得硬盘本身产生较大的热量,在本实施例中,在内壳和外壳之间设置有间隔肋,从而将内壳与外壳之间相互间隔处一个间隔空间,通过空气能够对硬盘所产生的热量进行隔热,能够防止硬盘所产生的热量传递到其他部件之上,同时,通过在外壳和上壳之间设置有间隔空间,从而能够使得内壳所携带的热量能够被传递到位于间隔空间之上的空气中,同时,通过设置间隔肋同样能够提高与空气的接触面,进一步的提高散热的性能。
Smart Images

Figure CN224652014U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of solid-state drive (SSD) accessory technology, specifically to an SSD enclosure that improves heat insulation and heat dissipation performance. Background Technology
[0002] Solid-state drives (SSDs) use hard drives as storage media to exchange large amounts of data between computers. They are portable mobile storage products that emphasize portability. SSDs typically have high-speed interfaces, allowing for rapid data transfer with the system. Generally, SSD enclosures are designed to be small and lightweight. Currently, hard drive enclosures on the market generate significant heat during data storage and transfer, which can affect drive performance. Furthermore, heat can be transferred to other components, impacting their efficiency. While most SSD enclosures currently use rubber sleeves for insulation to prevent heat transfer from affecting other components, there hasn't been a significant improvement in heat dissipation structures.
[0003] Therefore, there is an urgent need for a technology to solve the above-mentioned technical problems. Utility Model Content
[0004] One objective of this invention is to provide a solid-state drive enclosure with improved heat insulation and heat dissipation performance to solve the aforementioned technical problems. The present invention adopts the following technical solution: A solid-state drive enclosure with improved heat insulation and heat dissipation performance includes a housing, the housing including an inner shell, the inner shell having a mounting cavity for mounting a solid-state drive formed inside, and the mounting cavity having openings at both ends. The box body also includes an outer shell fitted inside the inner shell, and a number of spacer ribs are provided between the outer shell and the inner shell. The spacer ribs allow the inner shell and the outer shell to be spaced apart from each other and define a heat insulation space.
[0005] Furthermore, all the spacer ribs are arranged along the length of the mounting cavity, so that both ends of the spacer space are provided with openings to allow airflow to pass through.
[0006] Furthermore, all the spacer ribs extend along the length of the inner shell, dividing the heat insulation space into multiple independent air passages, and each air passage has an opening at both ends for airflow to pass through.
[0007] Furthermore, the two sides of the spacer rib are respectively formed on the outer shell and the inner shell, and the orthographic projection of the edge of the spacer rib connected to the outer shell toward the inner shell intersects with the edge of the spacer rib connected to the inner shell, so that the spacer rib is inclined.
[0008] Furthermore, a plurality of ventilation openings are provided on the outer casing at positions corresponding to at least one of the air passages, and all the ventilation openings are evenly distributed at both ends of the air passages.
[0009] Furthermore, several heat dissipation ripples with alternating peaks and valleys are formed on the outer surface of the outer shell.
[0010] Furthermore, the length of the inner shell is smaller than the length of the outer shell, and the two ends of the outer shell project orthogonally toward the inner shell, enclosing the two ends of the inner shell.
[0011] The beneficial effects of this utility model are as follows: During hard drive assembly, the hard drive is installed in the mounting cavity of the inner shell by snap-fit or embedding, thus protecting it from damage caused by bumps and knocks. During hard drive use, the hard drive itself generates a lot of heat due to data transmission. In this embodiment, a spacer rib is provided between the inner shell and the outer shell, creating a space between them. The air can insulate the heat generated by the hard drive, preventing the heat from being transferred to other components. At the same time, by providing a space between the outer shell and the upper shell, the heat carried by the inner shell can be transferred to the air above the spacer. In addition, the spacer rib also increases the contact area with the air, further improving the heat dissipation performance.
[0012] This technical solution provides a solid-state drive enclosure with improved heat insulation and heat dissipation performance. During the process of storing and transmitting data using the hard drive, it can provide heat insulation to prevent the heat generated by the hard drive from being transferred to other operating components. At the same time, the structure of the hard drive enclosure is improved to enhance the heat dissipation performance of the hard drive, enabling it to cool down quickly and dissipate the heat generated by the hard drive rapidly. This allows the hard drive to operate in a lower temperature environment, ensuring its operating efficiency. Attached Figure Description
[0013] Figure 1 This is a three-dimensional structural diagram of the present invention.
[0014] Figure 2 This is a side view of the present invention.
[0015] Figure 3 This is a cross-sectional view of the present invention along the BB direction.
[0016] Figure 4 This is a cross-sectional view of the present invention along the AA direction.
[0017] In the diagram: 100 - Inner shell; 200 - Outer shell; 300 - Spacing rib; 301 - Spacing space; 310 - Air passage; 201 - Ventilation opening; 220 - Heat dissipation ripples; 01 - Hard drive. Detailed Implementation
[0018] To facilitate understanding by those skilled in the art, the present invention will be further described below with reference to embodiments and accompanying drawings. The content mentioned in the embodiments is not intended to limit the present invention. The present invention will be described in detail below with reference to the accompanying drawings.
[0019] This technical solution provides a solid-state drive enclosure with improved heat insulation and heat dissipation performance. During the data storage and transmission process of the hard drive 01, it can provide heat insulation to prevent the heat generated by the hard drive 01 from being transferred to other operating components. At the same time, the structure of the hard drive enclosure is improved to enhance the heat dissipation performance of the hard drive 01, enabling rapid cooling of the hard drive 01 and quickly dissipating the heat generated by the hard drive 01. This allows the hard drive 01 to operate in a lower temperature environment, ensuring its operating efficiency.
[0020] like Figure 1-4 As shown, this embodiment provides a solid-state drive enclosure with improved heat insulation and heat dissipation performance, including a box body. The box body includes an inner shell 100, and the inner shell 100 has a mounting cavity formed inside for mounting a solid-state drive 01, and both ends of the mounting cavity are provided with openings. The box body also includes an outer shell 200 sleeved on the inner shell 100, and a plurality of spacer ribs 300 are provided between the outer shell 200 and the inner shell 100. The spacer ribs 300 are spaced apart from each other between the inner shell 100 and the outer shell 200 and define a heat insulation space.
[0021] During the assembly of the hard drive 01, the hard drive 01 is assembled into the mounting cavity of the inner shell 100 by snap-fit or embedding, thereby protecting the hard drive 01 from damage caused by bumps or knocks. During the use of the hard drive 01, the hard drive 01 itself generates a large amount of heat due to data transmission. In this embodiment, a spacer rib 300 is provided between the inner shell 100 and the outer shell 200, thereby creating a space 301 between the inner shell 100 and the outer shell 200. The air can insulate the heat generated by the hard drive 01, preventing the heat generated by the hard drive 01 from being transferred to other components. At the same time, by providing a spacer 301 between the outer shell 200 and the upper shell, the heat carried by the inner shell 100 can be transferred to the air above the spacer 301. In addition, by providing a spacer rib 300, the contact surface with the air can also be increased, further improving the heat dissipation performance.
[0022] In this embodiment, all the spacer ribs 300 are arranged along the length of the mounting cavity, so that both ends of the spacer space 301 are provided with openings for airflow to pass through. That is, the spacer ribs 300 are arranged at intervals along the mounting cavity, so that the spacer space 301 has two openings similar to the mounting cavity. These two openings allow airflow to pass through, thereby carrying away the heat inside the spacer space 301 and ensuring the effect of heat insulation and heat dissipation.
[0023] In this embodiment, in order to further improve the heat dissipation performance, all the spacer ribs 300 extend along the length of the inner shell 100, dividing the heat insulation space into multiple independent air passages 310, and both ends of the air passages 310 are provided with openings for airflow to pass through.
[0024] During use, the spacer rib 300 is set as a long strip structure and extends along the length of the inner shell 100, thereby dividing the spacer space 301 into multiple independent air passages 310. In this embodiment, the spacer space 301 is divided into multiple air passages 310 with small cross-sectional areas, thereby achieving the narrow tube effect, which can increase the airflow velocity of each air passage 310, thereby further improving the heat dissipation performance of the hard disk 01.
[0025] Meanwhile, in this embodiment, a plurality of vents 201 are provided on the outer casing 200 at positions corresponding to at least one air passage 310, and all vents 201 are evenly distributed at both ends of the air passage 310. By distributing vents 201 at both ends of at least one air passage 310, airflow can enter the air passage 310 from more directions, thereby improving heat dissipation performance.
[0026] In this embodiment, in order to further improve heat dissipation performance, the structure of the spacer rib 300 is configured. Specifically, the two sides of the spacer rib 300 are formed on the outer shell 200 and the inner shell 100, respectively. The orthographic projection of the edge connecting the spacer rib 300 and the outer shell 200 toward the inner shell 100 is intersected with the edge connecting the spacer rib 300 and the inner shell 100, so that the spacer rib 300 is inclined.
[0027] By setting the spacer 300 as an inclined structure, the contact area between the spacer 300 and the air can be increased while maintaining a small volume, thereby improving the efficiency of transferring heat from the hard drive 01 to the air and ensuring the heat dissipation performance of the hard drive 01.
[0028] Meanwhile, several heat dissipation ripples 202 with alternating peaks and valleys are formed on the outer surface of the outer casing 200. The heat dissipation ripples 202 can increase the contact area between the outer casing 200 and the air, thereby improving the heat dissipation effect of the outer casing 200.
[0029] In this embodiment, to more effectively protect the hard drive 01 and reduce damage caused by impact during a drop, the inner shell 100 is shorter than the outer shell 200, and the two ends of the outer shell 200 project towards the inner shell 100, enclosing the two ends of the inner shell 100. In other words, the casing has inward-curving ends, so that the ends of the hard drive 01 are recessed within the casing. In the event of a drop, because the ends of the hard drive 01 are recessed inside the casing, it can prevent the ends of the hard drive 01 from directly impacting other objects, thus improving the protection of the hard drive 01.
[0030] The above are merely preferred embodiments of the present utility model and are not intended to limit the present utility model in any way. Although the present utility model has been disclosed above with preferred embodiments, it is not intended to limit the present utility model. Any person skilled in the art can make some changes or modifications to the above-disclosed technical content to create equivalent embodiments without departing from the scope of the present utility model. Any simple modifications, equivalent changes and modifications made to the above embodiments based on the present utility model without departing from the scope of the present utility model shall fall within the scope of the present utility model.
Claims
1. A solid-state drive enclosure with improved heat insulation and heat dissipation performance, comprising a housing, characterized in that, The box includes an inner shell, and an installation cavity for mounting a solid-state drive is formed inside the inner shell, with openings at both ends of the installation cavity. The box body also includes an outer shell fitted inside the inner shell, and a number of spacer ribs are provided between the outer shell and the inner shell. The spacer ribs allow the inner shell and the outer shell to be spaced apart from each other and define a heat insulation space.
2. The solid-state drive enclosure with improved heat insulation and heat dissipation performance according to claim 1, characterized in that, All the spacer ribs are arranged along the length of the mounting cavity, so that both ends of the spacer space are provided with openings to allow airflow.
3. A solid-state drive enclosure with improved heat insulation and heat dissipation performance according to claim 2, characterized in that, All the spacer ribs extend along the length of the inner shell, dividing the heat insulation space into multiple independent air passages, and each air passage has an opening at both ends for airflow.
4. A solid-state drive enclosure with improved heat insulation and heat dissipation performance according to claim 1, characterized in that, The two sides of the spacer rib are respectively formed on the outer shell and the inner shell, and the orthographic projection of the edge of the spacer rib connected to the outer shell toward the inner shell intersects with the edge of the spacer rib connected to the inner shell, so that the spacer rib is inclined.
5. A solid-state drive enclosure with improved heat insulation and heat dissipation performance according to claim 3, characterized in that, A plurality of ventilation openings are provided on the outer casing at positions corresponding to at least one of the air passages, and all the ventilation openings are evenly distributed at both ends of the air passages.
6. A solid-state drive enclosure with improved heat insulation and heat dissipation performance according to claim 1, characterized in that, The outer surface of the outer casing is formed with several heat dissipation ripples that alternate between peaks and valleys.
7. A solid-state drive enclosure with improved heat insulation and heat dissipation performance according to claim 1, characterized in that, The inner shell is shorter than the outer shell, and the two ends of the outer shell are projected onto the inner shell and enclose the two ends of the inner shell.