Wind scooper and server
By designing a slidingly connected air guide component, the problem of high cost of air guide hoods in different server configurations is solved, and the flexible adjustment and cost reduction of air guide hoods are achieved, and the servers in different configurations are adapted to.
Patent Information
- Application Number
- CN202421923536.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-09
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2034-08-09
AI Technical Summary
In the prior art, due to the large number of compatible configurations within the server and the arrangement of different types of servers, different air guide hood structures need to be designed, resulting in high costs and cumbersome operations.
An air guide cover is provided, including a first air guide assembly and a second air guide assembly, the second air guide member and the third air guide member are slidably connected, and are surrounded by an air outlet. By adjusting the position and distance of the air guide member, the position and size of the air outlet are flexibly adjusted to adapt to servers of different configurations.
It realizes flexible adjustment of the air guide hood, reduces the cost of heat dissipation, adapts to servers with different configurations, and simplifies the assembly and matching process of the air guide hood.
Smart Images

Figure CN223140128U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of server heat dissipation, and particularly relates to an air guide cover and a server. Background Art
[0002] A server is a device used to provide services such as data storage, processing, and transmission to support computer requirements or other server requirements. To ensure the performance of the server, as many configurations as possible need to be added within the limited space of the server, such as PCI-e cards, GPU cards, and hard disks.
[0003] In the prior art, due to the large number of compatible configurations in the server, the configuration layouts of different types of servers are different, and different air guide covers are required to meet the heat dissipation requirements.
[0004] However, the above method requires designing different air guide cover structures and assembling them with different servers, resulting in a high cost. Summary of the Utility Model
[0005] This application provides an air guide cover and a server to solve the technical problem of high cost caused by designing different air guide cover structures and assembling them with different servers.
[0006] In a first aspect, this application provides an air guide cover, including: a first air guide component and a second air guide component. The second air guide component includes a second air guide member and a third air guide member. The second air guide member and the third air guide member are oppositely arranged, and the second air guide member and the third air guide member enclose an air outlet. At least one of the second air guide member and the third air guide member is slidably connected to the first air guide component; the side of the first air guide component facing away from the second air guide component is used to communicate with a heat dissipation module, and the side of the second air guide member and the third air guide member facing away from the first air guide component is used to communicate with a component to be cooled; at least one of the second air guide member and the third air guide member is slidably arranged on the first air guide component to change the air volume or position of the air outlet. Thus, the air guide cover in the embodiments of this application is convenient for adjusting the air guide position, adapting to servers with different configurations, and reducing the heat dissipation cost.
[0007] In some possible implementation manners, for the air guide cover provided in the embodiments of this application, at least one of the second air guide member and the third air guide member includes a side plate and / or a bottom. The side plate is slidably arranged on the first air guide component, the bottom is used to connect with the side plate, and the side plate is used to enclose the air outlet.
[0008] In some possible implementation manners, for the air guide cover provided in the embodiments of this application, the second air guide component further includes a sliding member, and a to-be-connected position is arranged on the first air guide component. The sliding member is slidably arranged on the to-be-connected position. By slidably connecting the sliding member with the to-be-connected position, the position and size of the air outlet of the air guide cover can be flexibly adjusted.
[0009] In some possible implementation manners, the air guide cover provided by the embodiment of the present application has a plurality of connection positions to be connected, which are arranged at intervals on the first air guide component. Through the plurality of connection positions to be connected, the sliding connection is made more reliable, and the sliding position is convenient for adaptive adjustment.
[0010] In some possible implementation manners, the air guide cover provided by the embodiment of the present application has a T-shaped slideway as the connection position to be connected. The structure of the T-shaped slideway is relatively simple, and when the sliding part slides, it is relatively stable, not easy to break away from the slideway, and the sliding is relatively smooth and fluent.
[0011] In some possible implementation manners, the air guide cover provided by the embodiment of the present application has a first air guide component including a first air guide member. The first air guide member is bent to form one or more air guide channels, and the air guide channels are communicated with the heat dissipation module, and the air outlet of the air guide channel faces the component to be cooled. Through the first air guide member, it is convenient to reduce the interference of the air flow around the heat dissipation module and avoid the formation of eddy currents. Through the air guide channels formed by bending, the air flow direction can be adjusted, and the air flow can be guided to the component to be cooled to make full use of the air flow for heat dissipation.
[0012] In some possible implementation manners, the air guide cover provided by the embodiment of the present application has an air guide surface on the first air guide member, and the air guide surface is inclined towards the second air guide component. Through the inclined air guide surface, a pressure difference is generated between the upper and lower sides of the air guide surface, thereby accelerating the air flow.
[0013] In some possible implementation manners, the air guide cover provided by the embodiment of the present application has one or at least two vent openings arranged at intervals on the air guide surface, and the vent openings face the second air guide component. Through the vent openings, the air flow resistance is reduced, and the air flow becomes more uniform and smooth.
[0014] In some possible implementation manners, the air guide cover provided by the embodiment of the present application has a first fixing member provided on one of the first air guide component and the second air guide component, and a second fixing member provided on the other of the first air guide component and the second air guide component, and the first fixing member is snap-connected to the second fixing member. Through the first fixing member and the second fixing member, it is convenient to fix the second air guide component on the first air guide component.
[0015] In a second aspect, the present application provides a server, including: a server body, a heat dissipation module, a configuration module, and the air guide cover according to any one of the above, all of which are provided on the server body; the air guide cover is located between the heat dissipation module and the configuration module.
[0016] An air guide cover and a server provided by the present application, the air guide cover includes: a first air guide component and a second air guide component, the second air guide component includes a second air guide member and a third air guide member, the second air guide member and the third air guide member are arranged opposite to each other, the second air guide member and the third air guide member enclose an air outlet, and at least one of the second air guide member and the third air guide member is slidably connected to the first air guide component; one side of the first air guide component facing away from the second air guide component is used for communicating with a heat dissipation module, and one side of the second air guide member and the third air guide member facing away from the first air guide component is used for communicating with a component to be cooled. By enclosing the air outlet with the second air guide member and the third air guide member, the air flow generated by the heat dissipation module passes through the first air guide component and flows out from the air outlet to cool the component to be cooled. At least one of the second air guide member and the third air guide member moves relative to the first air guide component, so as to change the positions of the second air guide member and the third air guide member, facilitating the change of the position of the air outlet and flexibly adjusting the air guiding position. Moreover, by adjusting the distance between the second air guide member and the third air guide member, it is also convenient to adjust the opening size of the air outlet to change the air volume. Thus, the air guide cover in the embodiment of the present application is convenient to adjust the air guiding position, adapt to servers with different configurations, and reduce the heat dissipation cost. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] The accompanying drawings herein are incorporated into the specification and constitute a part of this specification, showing embodiments consistent with the present application, and are used together with the specification to explain the principles of the present application.
[0018] Figure 1 It is a schematic structural diagram of the air guide cover provided by the embodiment of the present application;
[0019] Figure 2 is Figure 1 a schematic structural diagram of the first air guide component in
[0020] Figure 3 is Figure 1 a schematic structural diagram of the second air guide member in
[0021] Figure 4 is Figure 1 a cross-sectional view of the sliding member connected to the connection position to be connected in
[0022] Figure 5 It is a schematic structural diagram of the server provided by the embodiment of the present application;
[0023] Figure 6 It is a schematic structural diagram of the server with another arrangement provided by the embodiment of the present application;
[0024] Figure 7 It is a schematic structural diagram of the server with another arrangement provided by the embodiment of the present application.
[0025] Description of the reference numerals:
[0026] 10 - Heat dissipation module; 20 - Server body; 30 - Horizontally inserted PCI - e card module; 40 - Vertically inserted PCI - e card module; 50 - Horizontally inserted full - length GPU module; 60 - Hard disk module;
[0027] 100 - First air guiding component;
[0028] 110 - First air guiding part; 111 - First air guiding cover; 112 - Air guiding surface; 113 - Ventilation opening;
[0029] 120 - Connection position to be connected;
[0030] 130 - First fixing part;
[0031] 140 - Second fixing part;
[0032] 200 - Second air guiding component;
[0033] 210 - Second air guiding part; 211 - Bottom; 212 - Side plate;
[0034] 220 - Third air guiding part;
[0035] 230 - Sliding part.
[0036] Through the above - mentioned drawings, specific embodiments of the present application have been shown, and there will be more detailed descriptions hereinafter. These drawings and written descriptions are not intended to limit the scope of the concept of the present application in any way, but to illustrate the concept of the present application to those skilled in the art by referring to specific embodiments. Detailed implementation manners
[0037] Here, exemplary embodiments will be described in detail, and their examples are shown in the drawings. When the following description refers to the drawings, unless otherwise indicated, the same numbers in different drawings represent the same or similar elements. The implementation manners described in the following exemplary embodiments do not represent all implementation manners consistent with the present application. On the contrary, they are merely examples of devices and methods consistent with some aspects of the present application as detailed in the appended claims.
[0038] The embodiments or implementation manners in this specification are described in a progressive manner. Each embodiment focuses on the differences from other embodiments. For the same or similar parts among the embodiments, reference can be made to each other.
[0039] In general, terms should be understood at least in part by their use in context. For example, at least in part depending on the context, the term "one or more" as used herein can be used to describe any feature, structure, or property in the singular sense, or can be used to describe a combination of features, structures, or properties in the plural sense. Similarly, at least in part depending on the context, terms such as "a" or "" can also be understood to convey singular usage or plural usage.
[0040] The air guide cover is a device that utilizes an air guide channel to change the direction of the air flow, enabling the air flow to pass through the components or modules that need to be cooled for heat dissipation.
[0041] A server is a device used to provide services such as data storage, processing, and transmission to support computer requirements or other server requirements. To ensure the performance of the server, as many configurations as possible need to be added within the limited space of the server, such as PCI-e cards, GPU cards, and hard disks. The lengths of these PCI-e cards, GPU cards, and hard disks are different, and the placement methods are different, resulting in different configuration methods for the internal space of the server.
[0042] During the operation of the server, these configurations generate heat and need to be cooled. In the prior art, due to the large number of compatible configurations in the server and different configuration layouts for different types of servers, different air guide covers are required to meet the heat dissipation requirements. However, the above method requires designing different air guide cover structures and assembling and matching them with different servers, resulting in high costs, such as increasing the design cost and mold opening cost of the air guide cover. Moreover, when the server changes its layout, it is necessary to re-select or match the air guide cover to adapt to different layout configurations, which is rather cumbersome in operation.
[0043] To address the above technical problems, an embodiment of the present application provides an air guide cover, including: a first air guide component and a second air guide component. The second air guide component includes a second air guide member and a third air guide member. The second air guide member and the third air guide member are arranged opposite to each other, and the second air guide member and the third air guide member enclose an air outlet. Both the second air guide member and the third air guide member are slidably connected to the first air guide component; one side of the first air guide component facing away from the second air guide component is used to communicate with a heat dissipation module, and one side of the second air guide member and the third air guide member facing away from the first air guide component is used to communicate with a component to be cooled. By enclosing the air outlet with the second air guide member and the third air guide member, the air flow generated by the heat dissipation module passes through the first air guide component and flows out from the air outlet to cool the component to be cooled. The second air guide member and the third air guide member move relative to the first air guide component, thereby changing the positions of the second air guide member and the third air guide member, facilitating the change of the position of the air outlet and flexibly adjusting the air guide position. Moreover, by adjusting the distance between the second air guide member and the third air guide member, it is also convenient to adjust the opening size of the air outlet to change the air volume. Thus, the air guide cover in the embodiment of the present application is convenient for adjusting the air guide position, adapting to servers with different configurations, and reducing the heat dissipation cost.
[0044] The technical solutions of the present application and how the technical solutions of the present application solve the above technical problems will be described in detail below with specific embodiments. These several specific embodiments below can be combined with each other, and the same or similar concepts or processes may not be repeated in some embodiments. The embodiments of the present application will be described below with reference to the accompanying drawings.
[0045] It should be noted that the "one embodiment", "embodiment", "exemplary embodiment", "some embodiments", "embodiments of the present application", etc. mentioned in this specification indicate that the embodiments may include specific features, structures or characteristics, but not necessarily each embodiment includes such specific features, structures or characteristics. In addition, such phrases do not necessarily refer to the same embodiment. In addition, when combining an embodiment to describe a specific feature, structure or characteristic, it is within the knowledge scope of those skilled in the art to implement such a feature, structure or characteristic in combination with other embodiments, whether explicitly or not.
[0046] Combined with Figures 1 to 7 As shown, an air guide cover provided by an embodiment of the present application includes: a first air guide assembly 100 and a second air guide assembly 200. The second air guide assembly 200 includes a second air guide member 210 and a third air guide member 220. The second air guide member 210 and the third air guide member 220 are oppositely arranged. The second air guide member 210 and the third air guide member 220 enclose an air outlet. At least one of the second air guide member 210 and the third air guide member 220 is slidably connected to the first air guide assembly 100; one side of the first air guide assembly 100 facing away from the second air guide assembly 200 is used to communicate with the heat dissipation module, and one side of the second air guide member 210 and the third air guide member 220 facing away from the first air guide assembly 100 is used to communicate with the component to be cooled; at least one of the second air guide member 210 and the third air guide member 220 is slidably arranged on the first air guide assembly 100 to change the air volume or the position of the air outlet of the air outlet.
[0047] Taking a server as an example, the specific implementation manner of the air guide cover will be described in combination with the air guide cover in an embodiment of the present application.
[0048] The server includes a server body 20, a heat dissipation module 10 and a configuration module. The heat dissipation module can be multiple groups of fans, and the configuration module is the component to be cooled. There is a receiving cavity in the server body 20. The heat dissipation module 10 and the configuration module are both arranged in the receiving cavity. The air guide cover is covered on the server body 20. The air guide cover is arranged between the heat dissipation module and the component to be cooled. The airflow generated by the heat dissipation module is guided to the component to be cooled through the air guide cover to cool the component to be cooled.
[0049] The first air guiding component 100 can be a bent housing. The first air guiding component 100 can form an air guiding channel with the accommodating cavity. Of course, the first air guiding component 100 can also form an air guiding channel independently. The embodiment of the present application does not limit the number of air guiding channels.
[0050] The air inlet of the air guiding channel is communicated with the heat dissipation module, and the air outlet of the air guiding channel is arranged towards the component to be cooled. The air outlet of the air guiding channel can be a large through hole. It can also be formed by a plurality of small through holes arranged at intervals to form the air outlet of the air guiding channel. It should be noted that the diameter of the air inlet of the air guiding channel can be greater than or equal to the diameter of the air outlet of the air guiding channel, or the diameter of the air inlet of the air guiding channel can be less than the diameter of the air outlet of the air guiding channel. The air guiding channel can also be a structure similar to a venturi tube. The embodiment of the present application does not limit the specific structure and shape of the air guiding channel, which can be set according to the actual situation.
[0051] The second air guiding component 200 includes a second air guiding member 210 and a third air guiding member 220, at least one of which is slidably connected to the first air guiding component 100. The second air guiding member 210 and the third air guiding member 220 enclose an air outlet. The first air guiding component 100 has an air guiding channel for communicating with the heat dissipation module. The second air guiding component 200 moves relative to the air guiding channel to change the air volume or position of the air outlet.
[0052] Both the second air guiding member 210 and the third air guiding member 220 can be baffles, or can be set according to the actual situation. The embodiment of the present application does not limit this. Exemplarily, the second air guiding member 210 can further include a bottom 211 and a side plate 212. The side plate 212 is arranged on the bottom 211. A sliding member 230 is arranged on the bottom 211, and a to-be-connected position 120 adapted to the sliding member 230 is arranged on the first air guiding component 100. The sliding member 230 is slidably connected to the to-be-connected position 120. The structure of the second air guiding member 210 can be the same as or different from the structure of the third air guiding member 220. The embodiment of the present application does not limit this.
[0053] In the air guiding cover of the embodiment of the present application, an air outlet is enclosed by the second air guiding member 210 and the third air guiding member 220. The airflow generated by the heat dissipation module passes through the first air guiding component 100 and flows out from the air outlet to cool the component to be cooled. The second air guiding member 210 and the third air guiding member 220 move relative to the first air guiding component 100, so as to change the positions of the second air guiding member 210 and the third air guiding member 220, which is convenient for changing the position of the air outlet and flexibly adjusting the air guiding position. Moreover, by adjusting the distance between the second air guiding member 210 and the third air guiding member 220, it is also convenient to adjust the opening size of the air outlet to change the air volume. Thus, the air guiding cover in the embodiment of the present application is convenient for adjusting the air guiding position, adapting to servers with different configurations, and reducing the heat dissipation cost.
[0054] In some embodiments, for the air guide cover provided in the embodiments of the present application, at least one of the second air guide member 210 and the third air guide member 220 includes a side plate 212 and / or a bottom 211. The side plate 212 is slidably disposed on the first air guide assembly 100. The bottom 211 is used to connect with the side plate 212, and the side plate 212 is used to enclose an air outlet.
[0055] In specific implementation, both the second air guide member 210 and the third air guide member 220 include a bottom 211 and a side plate 212. For the sake of convenience in description, the bottom 211 and the side plate 212 of the second air guide member 210 are named the second bottom and the second side plate respectively, and the bottom 211 and the side plate 212 of the third air guide member 220 are named the third bottom and the third side plate respectively.
[0056] Both the second bottom and the third bottom are slidably connected to the first air guide assembly 100. Exemplarily, on the side of the second bottom and the third bottom facing the first air guide assembly 100, sliders are provided; on the side of the first air guide assembly 100 facing the second bottom and the third bottom, sliding grooves are provided. The second side plate is disposed on one side of the second bottom, and the extending direction of the second side plate is perpendicular to the extending direction of the second bottom. The second side plate can be disposed on the periphery of the second bottom or in the middle of the second bottom. The same applies to the third bottom and the third side plate. It should be noted that the second side plate and the third side plate slide relative to the first air guide assembly 100. By adjusting the distance between the second side plate and the third side plate, the opening size of the air outlet is adjusted to realize the size of the air intake volume. By changing the positions of the second side plate and the third side plate, the position of the air outlet can be changed to realize the change of the air guiding position.
[0057] The embodiments of the present application do not specifically limit the specific structure of the side plate 212. Exemplarily, the projection of the side plate 212 can be a straight line, a broken line or a curve with a certain bending angle, which is convenient for realizing air guiding direction change.
[0058] In some embodiments, one of the second air guide member 210 and the third air guide member 220 includes a side plate 212 and / or a side plate 212. For example, the second air guide member 210 includes a bottom 211 and a side plate 212, and the third air guide member 220 is only a side plate 212. For the sake of distinction, the side plate 212 of the third air guide member 220 is named the third side plate. The third side plate is disposed opposite to the side plate 212. Both the third side plate and the bottom 211 are slidably disposed on the first air guide assembly 100. The side plate 212 is fixedly disposed on the bottom 211. The third side plate, the side plate 212, the bottom 211 and the first air guide assembly 100 jointly enclose an air outlet. By moving the third side plate and the side plate 212 relative to the first air guide assembly 100, the position of the air outlet is adjusted.
[0059] In some other embodiments, the second air guiding member 210 only includes the side plates 212 and there is no third air guiding member 220, and an air outlet is formed by the side plates 212 and the side shell of the server.
[0060] In some other embodiments, for the air guiding cover provided in the embodiments of the present application, the second air guiding assembly 200 further includes a sliding member 230, a to-be-connected position 120 is provided on the first air guiding assembly 100, and the sliding member 230 is slidably arranged on the to-be-connected position 120.
[0061] Specifically, a to-be-connected position 120 is provided on the first air guiding assembly 100, and the sliding member 230 is slidably connected to the to-be-connected position 120. Exemplarily, the air guiding cover in the embodiments of the present application is used for dissipating heat from the server. The server includes a server body 20, an accommodation cavity is provided in the server body 20, and the heat dissipation module 10 and the configuration module are both arranged in the accommodation cavity.
[0062] The first air guiding assembly 100 includes a first air guiding cover 111 and a bottom plate. The first air guiding cover 111 covers the server body 20. The air guiding cover is bent to jointly form an air guiding channel with the bottom plate of the accommodation cavity, or an air guiding channel can also be formed only by surrounding the air guiding cover. The air inlet of the air guiding channel is communicated with the air outlet of the heat dissipation module 10, and the air outlet of the air guiding channel is arranged towards the configuration module. The bottom plate is arranged in the accommodation cavity. The to-be-connected position 120 can be separately arranged on the first air guiding cover 111, or separately arranged on the bottom plate, or can be arranged on both the first air guiding cover 111 and the bottom plate.
[0063] The to-be-connected position 120 can be arranged along a first direction, and the first direction is perpendicular to the air outlet direction of the air outlet of the air guiding channel. The second air guiding member 210 and the third air guiding member 220 are both provided with the sliding member 230, and the sliding member 230 is slidably connected to the to-be-connected position 120, driving the second air guiding member 210 and the third air guiding member 220 to move relative to the first air guiding assembly 100, so as to change the position or the size of the air outlet.
[0064] Among them, for the air guiding cover provided in the embodiments of the present application, the number of the to-be-connected positions 120 is multiple, and they are arranged at intervals on the first air guiding assembly 100.
[0065] In some embodiments, the first air guiding assembly 100 includes a first air guiding cover 111, a bottom plate and an air guiding side plate. The air guiding side plate is obliquely arranged on the first air guiding cover 111. The first air guiding cover 111 covers the server body 20. The side edge of the first air guiding cover 111 is clamped with the side wall of the server body 20. The first air guiding cover 111 is connected to the bottom plate through the air guiding side plate, and an air outlet is provided on the air guiding side plate.
[0066] The number of the to-be-connected positions 120 is multiple, and can be set on at least one of the first air guide cover 111, the bottom plate and the air guide side plate. Exemplarily, the number of the to-be-connected positions 120 is 3, and the to-be-connected positions 120 are arranged at intervals on the air guide side plate. Or there are 3 to-be-connected positions 120, which are respectively arranged on the first air guide cover 111, the bottom plate and the air guide side plate in one-to-one correspondence. Or the number of the to-be-connected positions 120 is 2, which are respectively arranged corresponding to the air guide side plate and the bottom plate.
[0067] The embodiments of the present application do not specifically limit the length and width of the to-be-connected positions 120, and can be designed according to actual situations.
[0068] Exemplarily, for the air guide cover provided by the embodiments of the present application, the to-be-connected position 120 is a T-shaped slideway.
[0069] In specific implementation, the to-be-connected position 120 can be one T-shaped slideway, two T-shaped slideways, or three T-shaped slideways. The embodiments of the present application do not limit the quantity.
[0070] In some optional implementation manners, the number of T-shaped slideways included in each to-be-connected position 120 can be different, and the embodiments of the present application do not limit this. Exemplarily, the to-be-connected position 120 arranged on the air guide side plate includes two T-shaped slideways; the to-be-connected position 120 arranged on the connecting plate includes three T-shaped slideways.
[0071] In some possible implementation manners, for the air guide cover provided by the embodiments of the present application, the first air guide assembly 100 includes a first air guide member 110, and the first air guide member 110 is bent to form one or more air guide channels, the air guide channels are communicated with the heat dissipation module, and the air outlet of the air guide channel faces the to-be-heat-dissipated component.
[0072] In specific implementation, the first air guide member 110 can be bent to form one air guide channel, and the first air guide member 110 can also be bent to form multiple air guide channels. One end of the air guide channel is communicated with the heat dissipation module, and the other end is arranged facing the to-be-heat-dissipated component. The second air guide member 210 and the third air guide member 220 are both arranged at the air outlet of the air guide channel and are connected to the first air guide member 110.
[0073] Exemplarily, there are two air guide channels, which are arranged at intervals on the server body 20.
[0074] The embodiments of the present application do not specifically limit the shape and size of the air guide channel, and can be set according to actual situations.
[0075] In some possible implementation manners, for the air guide cover provided by the embodiments of the present application, the first air guide member 110 has an air guide surface 112, and the air guide surface 112 is inclined towards the second air guide assembly 200.
[0076] In specific implementation, the air guiding surface 112 is arranged on one side of the first air guiding member 110. The air guiding surface 112 is located at the air outlet of the air guiding channel, and forms a certain angle with the air outlet direction of the air guiding channel. When the air guiding surface 112 is vertically arranged, the angle between the air guiding surface 112 and the air outlet direction is 90 degrees. That is, the projection on the upper side of the air guiding surface 112 coincides with the projection on the lower side of the air guiding surface 112.
[0077] When the air guiding surface 112 is inclined towards the second air guiding assembly 200, the angle between the air guiding surface 112 and the air outlet direction is an acute angle. That is, the projection on the upper side of the air guiding surface 112 is located behind the projection on the lower side of the air guiding surface 112.
[0078] In some embodiments, when the air guiding surface 112 is inclined towards the second air guiding assembly 200, the angle between the air guiding surface 112 and the air outlet direction can also be an obtuse angle, that is, the projection on the upper side of the air guiding surface 112 is located in front of the projection on the lower side of the air guiding surface 112.
[0079] It can be understood that, compared with the vertically arranged air guiding surface, for the inclined air guiding surface, due to the wind speed difference between the upper side air outlet and the lower side air outlet, according to Bernoulli's principle, a pressure difference is generated, thereby accelerating the air speed flow.
[0080] In some possible implementation manners, for the air guiding cover provided in the embodiment of the present application, one or at least two spaced vent openings 113 are provided on the air guiding surface 112, and the vent openings 113 are arranged towards the second air guiding assembly 200.
[0081] One vent opening 113 can be provided on the air guiding surface 112, and multiple vent openings 113 can also be provided on the air guiding surface 112. The vent openings 113 are communicated with the air guiding channel and are arranged towards the second air guiding assembly 200. The air enters from the air inlet of the air guiding channel, passes through the air guiding channel, flows out from the vent openings 113, and then is guided by the second air guiding assembly 200.
[0082] The embodiment of the present application does not limit the shape of the vent openings 113, and can be designed according to the actual situation. Exemplarily, the vent openings 113 are square.
[0083] In some embodiments, for the air guiding cover provided in the embodiment of the present application, a first fixing member 130 is provided on one of the first air guiding assembly 100 and the second air guiding assembly 200, and a second fixing member 140 is provided on the other of the first air guiding assembly 100 and the second air guiding assembly 200. The first fixing member 130 is snap-connected with the second fixing member 140.
[0084] In specific implementation, a first fixing member 130 is provided on the second air guiding assembly 200, and a second fixing member 140 is provided on the first air guiding assembly 100. Exemplarily, the first fixing member 130 is a buckle, and the second fixing member 140 is a limiting groove. The number of limiting grooves is multiple, which are provided on the first air guiding assembly 100 and are spaced along its length direction.
[0085] This application does not specifically limit the specific shapes and structures of the buckle and the limiting groove, as long as the connecting portion of the buckle is adapted to the shape of the limiting groove. For example, the limiting groove is a T-shaped groove, and the connecting portion is a T-shaped block. Press the first fixing member 130 to make it engaged with the second fixing member 140, and then press the first fixing member 130 again to make it disengaged from the second fixing member 140.
[0086] In a second aspect, this application provides a server, including: a server body 20, a heat dissipation module 10, a configuration module, and an air guiding cover in any of the above embodiments, all of which are provided on the server body 20; the air guiding cover is located between the heat dissipation module 10 and the configuration module.
[0087] It should be noted that there is a receiving cavity in the server body 20. The heat dissipation module 10 and the configuration module are both provided in the receiving cavity. The air guiding cover covers the server body 20, and the air inlet of the air guiding cover corresponds to the heat dissipation module 10. Exemplarily, the heat dissipation module 10 includes a plurality of heat dissipation fans, which are spaced at the bottom of the receiving cavity. The air outlet of the heat dissipation fan is communicated with the air inlet of the air guiding cover.
[0088] Among them, when installing the air guiding cover, the air guiding cover covers the server body 20 from top to bottom. A plurality of screws are provided on both sides of the air guiding cover, and the screws cooperate with the fixing positions on both sides of the server body 20. Tighten the screws to fixedly connect the air guiding cover with the server body 20.
[0089] In specific implementation, the configuration module can be flexibly adjusted according to actual usage conditions.
[0090] In some embodiments, as Figure 5 shown, the configuration module includes a vertically inserted PCI-e card module 40 and a horizontally inserted PCI-e card module 30. The vertically inserted PCI-e card module 40 and the horizontally inserted PCI-e card module 30 are spaced along the width direction of the server body 20, and the vertically inserted PCI-e card module 40 is located between the horizontally inserted PCI-e card modules 30. The air inlet of the air guiding cover is correspondingly arranged with the heat dissipation module 10, and the air outlet of the air guiding cover faces the vertically inserted PCI-e card module 40 and the horizontally inserted PCI-e card module 30. The second air guiding assembly 200 slides relative to the first air guiding assembly 100 to make the second air guiding assembly 200 correspondingly arranged with the horizontally inserted PCI-e card module 30.
[0091] In some optional ways, as Figure 6As shown, the configuration module includes a vertically inserted PCI-e card module 40 and a horizontally inserted full-length GPU module 50; the vertically inserted PCI-e card module 40 is located between two horizontally inserted full-length GPU modules 50. The second air guide component 200 slides relative to the first air guide component 100 so that the second air guide component 200 is located between two horizontally inserted full-length GPU modules 50, thereby adjusting the air outlet position of the air guide cover.
[0092] In some other embodiments, as Figure 7 shown, the configuration module includes a vertically inserted PCI-e card module 40 and a hard disk module 60. The vertically inserted PCI-e card module 40 and the hard disk module 60 are arranged at intervals along the width direction of the server body 20. The second air guide component 200 slides relative to the first air guide component 100 so that the second air guide component 200 is correspondingly arranged with the hard disk module 60, thereby adjusting the air outlet position of the air guide cover.
[0093] It should be easily understood that the terms "on", "above", and "over" in this disclosure should be interpreted in the broadest manner, such that "on" not only means "directly on something", but also includes the meaning of "on something" with intermediate features or layers therebetween, and "above" or "over" not only includes the meaning of "above" or "over something", but may also include the meaning of "above" or "over something" with no intermediate features or layers therebetween (i.e., directly on something).
[0094] In addition, for ease of description, spatial relative terms may be used in this text, such as "below", "beneath", "under", "above", "over", etc., to describe the relationship of one element or feature relative to other elements or features as shown in the figures. Spatial relative terms are intended to encompass different orientations of the device in use or operation other than the orientation shown in the drawings. The device may have other orientations (rotated 90 degrees or in other orientations), and the spatial relative descriptive terms used in this text may be interpreted accordingly.
[0095] Finally, it should be noted that: the above embodiments are only used to illustrate the technical solutions of the present application, and are not intended to limit them; although the present application has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that: they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements on some or all of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the scope of the technical solutions of the embodiments of the present application.
Claims
1. An air guide cover, characterized in that, Comprising: A first air guiding component (100) and a second air guiding component (200), The second air guiding component (200) includes a second air guiding member (210) and a third air guiding member (220). The second air guiding member (210) and the third air guiding member (220) are arranged opposite to each other. The second air guiding member (210) and the third air guiding member (220) enclose an air outlet. At least one of the second air guiding member (210) and the third air guiding member (220) is slidably connected to the first air guiding component (100); One side of the first air guiding component (100) facing away from the second air guiding component (200) is used for communicating with the heat dissipation module (10). One side of the second air guiding member (210) and the third air guiding member (220) facing away from the first air guiding component (100) is used for communicating with the component to be heat dissipated; At least one of the second air guiding member (210) and the third air guiding member (220) is slidably arranged on the first air guiding component (100) to change the air volume or the position of the air outlet of the air outlet.
2. The air deflector according to claim 1, wherein, At least one of the second air guiding member (210) and the third air guiding member (220) includes a side plate (212) and / or a bottom (211). The side plate (212) is slidably arranged on the first air guiding component (100). The bottom (211) is used for connecting with the side plate (212). The side plate (212) is used for enclosing the air outlet.
3. The air guide cover according to claim 1, characterized in that, The second air guiding component (200) further includes a sliding member (230). A to-be-connected position (120) is arranged on the first air guiding component (100). The sliding member (230) is slidably arranged on the to-be-connected position (120).
4. The air guide cover according to claim 3, characterized in that, The number of the to-be-connected positions (120) is multiple and they are arranged at intervals on the first air guiding component (100).
5. The air guide cover according to claim 3, characterized in that, The to-be-connected position (120) is a T-shaped slideway.
6. The air guide cover according to claim 3, characterized in that, The first air guiding component (100) includes a first air guiding member (110). The first air guiding member (110) is bent to form one or more air guiding channels. The air guiding channels are communicated with the heat dissipation module (10). The air outlet of the air guiding channel faces the component to be heat dissipated.
7. The air guide cover according to claim 6, characterized in that, The first air guiding member (110) has an air guiding surface (112). The air guiding surface (112) is inclined towards the second air guiding component (200).
8. The air guide cover according to claim 7, characterized in that One or at least two vent openings (113) are arranged at intervals on the air guiding surface (112). The vent openings (113) are arranged towards the second air guiding component (200).
9. The air guide cover according to any one of claims 1-8, characterized in that, A first fixing member (130) is arranged on one of the first air guiding component (100) and the second air guiding component (200). A second fixing member (140) is arranged on the other of the first air guiding component (100) and the second air guiding component (200). The first fixing member (130) is snap-connected to the second fixing member (140).
10. A server, comprising: The server body (20), the heat dissipation module (10) both provided in the server body (20), the configuration module, and the air guide cover according to any one of claims 1-9 above; the air guide cover is located between the heat dissipation module (10) and the configuration module.
Citation Information
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Wind scooper structure and server
CN120560477A