Server wind scooper and server

By opening ventilation holes on the main body of the air guide hood and setting a detachable adjustment body, the problems of complex structure of the air guide hood and inflexible air volume adjustment are solved, and the effects of simplifying the structure, reducing costs and improving air volume adjustment efficiency are achieved.

CN223245078UActive Publication Date: 2025-08-19XFUSION DIGITAL TECH CO LTD
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Patent Information

Application Number
CN202422169775.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-04
Publication Date
2025-08-19
Estimated Expiration
2034-09-04

AI Technical Summary

Technical Problem

The existing server air hood has a complex structure, which increases assembly difficulty and production cost, and the air volume adjustment is not flexible enough.

Method used

A ventilation hole is opened on the main body of the air guide cover, and a detachable adjustment body is provided in the ventilation hole. The adjustment body can be detached to adjust the air volume, simplifying the structure and improving the flexibility and reliability of air volume adjustment.

Benefits of technology

The structure of the air guide hood is simplified, the assembly difficulty and production cost are reduced, and the flexibility and reliability of air volume adjustment are improved, and the heat dissipation efficiency is improved.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The embodiment of the utility model provides a server wind scooper and a server, the wind scooper comprises a main body part and a first adjusting body, a first ventilation hole is formed in the main body part, the first adjusting body is located in the first ventilation hole, and a gap is formed between the periphery of the first adjusting body and the inner wall of the first ventilation hole; and the periphery of the first adjusting body is detachably connected with the inner wall of the first ventilation hole through a connecting rib. The first adjusting body is used for enabling the first ventilation hole to be in an open state after disassembly. According to the wind scooper provided by the embodiment of the invention, the flexibility and the reliability of wind volume adjustment of the wind scooper can be effectively improved, the structure of the wind scooper can be effectively simplified, and the assembly difficulty and the production cost of the wind scooper are reduced.
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Description

Technical Field

[0001] The embodiments of the present application relate to the field of server technology, and in particular to a server air duct and a server. Background Art

[0002] Servers are core network devices, providing services to network users and a crucial component for resource sharing. They include processors, hard drive modules, memory, and system buses. These components typically generate heat during operation, and excessive heat can affect server speed and efficiency. Therefore, cooling devices are typically required within servers to maintain a constant coolant temperature.

[0003] The server is usually equipped with a heat sink to dissipate heat and cool down the components inside the server. Usually, a server is compatible with many module components, and different components can be flexibly matched during the production and use of the whole machine. When carrying different components, the air volume distribution requirements are different. Therefore, an air guide is also provided in the server, which is used to distribute the cold air blown out by the heat sink, so that the air volume in the heat sink can be blown to each component according to a preset path to cool the component. In order to adjust the air volume distribution, some air guides usually include an air volume adjustment structure, and the air volume adjustment structure is connected to the air guide through a matching piece. The air volume adjustment structure is adjusted by the matching piece to adjust the angle, thereby adjusting the air volume distribution.

[0004] However, the above-mentioned air scoop has a complex structure, which increases the difficulty of assembling the air scoop and the production cost. Utility Model Content

[0005] The embodiments of the present application provide a server air scoop and a server, which can effectively simplify the structure of the server air scoop and reduce the assembly difficulty and production cost of the server air scoop.

[0006] The present application provides a first aspect of an embodiment of a server air scoop, comprising:

[0007] a main body, wherein a first ventilation hole is formed on the main body;

[0008] First regulatory body;

[0009] The first adjusting body is located in the first ventilation hole, a gap is defined between the outer periphery of the first adjusting body and the inner wall of the first ventilation hole, the outer periphery of the first adjusting body is connected to the inner wall of the first ventilation hole via a connecting rib, and the first adjusting body is detachably connected to the inner wall of the first ventilation hole via the connecting rib;

[0010] The first adjusting body is used to open the first ventilation hole after being disassembled.

[0011] In an embodiment of the present application, a first ventilation hole is provided on the main body of the server air scoop, and a detachable first adjustment body is disposed within the first ventilation hole. The first adjustment body and the first ventilation hole are connected by a connecting rib. By removing the first adjustment body from the first ventilation hole on the main body, the ventilation volume of the ventilation hole on the main body can be adjusted, allowing the air scoop to flexibly distribute the air volume. The connecting rib is relatively small and easy to break, allowing the first adjustment body to be quickly removed from the first ventilation hole, effectively improving the flexibility and reliability of the air volume adjustment of the air scoop. The above-mentioned air scoop has a simple structure, is easy and quick to operate, and can flexibly and efficiently adjust the air volume, effectively simplifying the structure of the air scoop and reducing the assembly difficulty and production cost of the air scoop.

[0012] In one possible implementation, the connecting rib is smaller than the first regulating body in the thickness direction of the first regulating body. This effectively reduces the thickness of the connecting rib, thereby lowering its structural strength and allowing the user to break the connecting rib with less force. This facilitates removal of the first regulating body from the connecting rib and from the first vent, effectively improving the efficiency of disassembly of the first regulating body and enhancing the reliability of air volume adjustment.

[0013] In one possible implementation, the width of the connecting rib is 1 mm to 10 mm. This allows the connecting rib to be effectively reduced in size while ensuring connectivity between the first adjusting body and the first vent. This can effectively reduce the structural strength of the connecting rib, facilitating quick breaking of the connecting rib. This effectively improves the reliability of disassembly between the first adjusting body and the first vent.

[0014] In one possible implementation, the width of the gap is 0.5 mm to 5 mm. This allows the user to easily observe the position of the connecting rib through the gap, allowing the user to accurately break the connecting rib during disassembly of the first regulating body, thereby removing the first regulating body from the first vent. Furthermore, this can reduce or avoid the gap being too large, which could affect the ventilation volume in that area, thereby helping to improve the accuracy of air volume adjustment in that area.

[0015] In one possible implementation, the number of the connecting ribs is greater than or equal to two, and the connecting ribs are evenly distributed around the periphery of the first regulating body. This can improve the reliability of the connection between the first regulating body and the first vent, reduce or prevent the first regulating body from falling during the process of blocking the first vent, and help improve the overall structural stability of the air guide cover.

[0016] In one possible implementation, there are multiple first ventilation holes, each of which has a detachably connected first adjustment body. This allows the air volume of each first ventilation hole to be adjusted. When the air volume of a particular first ventilation hole needs to be increased, the first adjustment body in the corresponding first ventilation hole can be removed to open the corresponding first ventilation hole, thereby effectively increasing the air volume of the first ventilation hole in that location and effectively improving the flexibility of adjusting the air volume of the first ventilation holes.

[0017] In a possible implementation, the main body is further provided with a second ventilation hole, and the server air guide cover further includes a second adjustment body;

[0018] The second adjusting body covers the second ventilation hole and is detachably connected to the main body. The second adjusting body is used to cover the second ventilation hole and open the second ventilation hole after being disassembled.

[0019] In this way, by installing and disassembling the second adjusting body on the main body, the ventilation volume at the second ventilation hole can be effectively controlled, the flexibility and reliability of the air volume adjustment of the air guide cover can be effectively improved, the air volume adjustment work of the air guide cover 100 can be simplified, and the air volume adjustment efficiency of the air guide cover can be improved.

[0020] In one possible implementation, the second adjusting body is detachably connected to the main body by adhesive bonding. Adhesive bonding offers a simple structure, low cost, and quick and easy operation. This effectively simplifies the structure of the detachable connection between the second adjusting body and the main body, improves ease of assembly and disassembly between the second adjusting body and the main body, and reduces the cost of implementing the detachable connection between the second adjusting body and the main body.

[0021] In one possible implementation, the main body further includes a stopper located on the main body. When the second adjusting body is located on the main body, the second adjusting body abuts against the stopper. The stopper can limit the position of the second adjusting body to reduce or prevent the second adjusting body from shifting when attached to the main body, preventing the second adjusting body from shifting and affecting the blocking effect of the second vent. This helps improve the accuracy of the second adjusting body blocking the second vent, thereby enhancing the precision of the air volume adjustment of the air guide cover 100.

[0022] In one possible implementation, the second regulating body is located on a side of the main body facing the air inlet direction. This allows airflow from the air inlet direction to blow onto the second regulating body, and the main body can support the second regulating body, thereby making the bond between the second regulating body and the main body more secure and reliable, effectively reducing or preventing separation between the second regulating body and the main body, and thereby effectively improving the reliability and stability of the connection between the second regulating body and the main body.

[0023] In one possible implementation, the number of second ventilation holes is multiple, and the plurality of second ventilation holes are arranged in M rows and N columns, where M is greater than or equal to 1 and N is greater than or equal to 1. This effectively increases the number of second ventilation holes, and by using the second regulating body to block the second ventilation holes in different ways, the air scoop can achieve a variety of different air volume adjustment effects. This effectively increases the diversity and flexibility of the air scoop's air volume adjustment.

[0024] In one possible implementation, the second adjusting body blocks at least one of the second ventilation holes. This allows the second adjusting body to flexibly block the second ventilation holes in various ways, enabling the second ventilation holes to be blocked in a variety of different ways, thereby achieving different air volume adjustments and effectively improving the flexibility of air volume adjustment of the air guide cover 100.

[0025] A second aspect of an embodiment of the present application provides a server, comprising a housing and any of the above-mentioned air guide covers, wherein the air guide cover is located inside the housing.

[0026] By making the server include the above-mentioned air guide cover, the structure of the air guide cover in the server can be effectively simplified and the production cost of the server can be reduced. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] Figure 1 A schematic diagram of the structure of a server provided in an embodiment of the present application;

[0028] Figure 2 A schematic diagram of the structure of another server provided in an embodiment of the present application;

[0029] Figure 3 A schematic structural diagram of an air guide hood provided in an embodiment of the present application;

[0030] Figure 4 for Figure 3 Enlarged view of middle area A;

[0031] Figure 5 A schematic structural diagram of a first ventilation hole after the first adjustment body is removed according to an embodiment of the present application;

[0032] Figure 6 A schematic diagram of the dimensions of a connecting rib and a gap provided in an embodiment of the present application;

[0033] Figure 7 A schematic structural diagram of a first adjusting body and a connecting rib provided in an embodiment of the present application;

[0034] Figure 8A schematic structural diagram of another air guide cover provided in an embodiment of the present application when the second adjustment body is not provided;

[0035] Figure 9 for Figure 8 Enlarged view of middle area B;

[0036] Figure 10 A schematic structural diagram of a second regulating body provided in an embodiment of the present application;

[0037] Figure 11 A schematic structural diagram of another air guide cover provided in an embodiment of the present application after a second adjustment body is provided;

[0038] Figure 12 for Figure 11 Enlarged view of middle area C;

[0039] Figure 13 A schematic diagram of the positional relationship between an air guide cover and the airflow direction provided in an embodiment of the present application;

[0040] Figure 14 A schematic structural diagram of another air guide hood provided in an embodiment of the present application.

[0041] Description of reference numerals:

[0042] 100-air guide cover;

[0043] 110-main body;

[0044] 111 - first ventilation hole; 112 - second ventilation hole; 113 - gap;

[0045] 120-first regulating body; 121-connecting rib;

[0046] 130 - second regulating body; 131 - adhesive layer;

[0047] 140-Limiting part.

[0048] 10-Server;

[0049] 200-housing; 210-fan; 220-memory; 230-processor;

[0050] 240-circuit board; 250-graphics processor; 260-hard disk module. DETAILED DESCRIPTION

[0051] The terms used in the implementation section of this application are only used to explain the specific embodiments of this application and are not intended to limit this application. The implementation of the embodiments of this application will be described in detail below with reference to the accompanying drawings.

[0052] To make the purpose, technical solutions, and advantages of the embodiments of this application more clear, the technical solutions in the embodiments of this application will be clearly and completely described below in conjunction with the drawings in the embodiments of this application. Obviously, the described embodiments are part of the embodiments of this application, not all of the embodiments. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of this application.

[0053] Figure 1 A schematic diagram of the structure of a server provided in an embodiment of the present application is provided. Figure 2 A schematic diagram of the structure of another server provided in an embodiment of the present application.

[0054] Embodiments of the present application provide a server air scoop and a computing device including the air scoop. The computing device may be a server, a switch, a high-performance computing (HPC), or other computing device. The following description uses a server as an example.

[0055] See also Figure 1 and Figure 2 As shown, the server 10 may include a housing 200 and a circuit board 240 located in the housing 200, a central processing unit 230 (CPU), a memory 220, a hard disk module 260, dual inline memory modules (DIMM), a graphics processing unit 250 (GPU), a network card, a high-speed serial bus (Peripheral Component Interconnect Express, PCIE) card, a complex programmable logic device (CPLD), a baseboard management controller (BMC) and other devices.

[0056] See also Figure 1 and Figure 2 As shown, the server air scoop 100 may be located within the server housing, wherein a cooling fan 210 may also be disposed within the server housing. The fan 210 may be activated to generate airflow to dissipate heat and cool components within the server 10. The server air scoop 100 may be referred to as the air scoop 100 for short.

[0057] The air scoop 100 can guide and distribute the airflow blown by the fan 210, so that the airflow can be distributed to different locations according to the heat dissipation requirements of each component or the layout of the components within the housing. For example, the air scoop 100 can be located downstream of the airflow generated by the fan 210, and part of the airflow blown by the fan 210 can pass through the air scoop 100, so that the air scoop 100 can distribute the flow direction of the airflow.

[0058] The embodiment of the present application provides an air scoop, which is provided with a first ventilation hole on the main body of the air scoop and a detachable first adjustment body in the first ventilation hole. The first adjustment body and the first ventilation hole are connected by a connecting rib. By removing the first adjustment body from the first ventilation hole on the main body, the ventilation volume of the ventilation hole on the main body can be adjusted, so that the air scoop can flexibly distribute the air volume. The connecting rib is relatively small and easy to break, and the first adjustment body can be quickly removed from the first ventilation hole, which can effectively improve the flexibility and reliability of the air volume adjustment of the air scoop. The above-mentioned air scoop has a simple structure, is easy and quick to operate, and can flexibly and efficiently adjust the air volume. It can effectively simplify the structure of the air scoop and reduce the assembly difficulty and production cost of the air scoop.

[0059] The following is a detailed description of the air guide cover provided in the embodiment of the present application in conjunction with the accompanying drawings.

[0060] Figure 3 This is a schematic structural diagram of an air guide cover provided in an embodiment of the present application. Figure 4 for Figure 3 A magnified view of area A in the middle. Figure 5 This is a schematic structural diagram of a first ventilation hole after the first adjustment body is removed according to an embodiment of the present application.

[0061] The embodiment of the present application provides an air guide cover 100, see Figure 3 and Figure 4 As shown, the air guide cover 100 may include a main body 110 and a first adjustment body 120, wherein the main body 110 is the main structure of the air guide cover 100, and the air guide cover 100 can be connected to the shell 200 of the server 10 through the main body 110 to achieve the installation and fixation of the air guide cover 100 in the shell 200 of the server 10.

[0062] A first ventilation hole 111 may be provided on the main body 110, and a first adjustment body 120 may be detachably connected to the main body 110, wherein the first adjustment body 120 may be used to change the size of the first ventilation hole 111 to adjust the air volume of the air scoop 100. For example, when the first adjustment body 120 is mounted on the main body 110, the first ventilation hole 111 may be blocked to reduce the ventilation volume of the corresponding portion of the air scoop 100. When the heat generation of the device corresponding to the portion is low and the heat dissipation requirement of the device is low, the first adjustment body 120 may be positioned on the main body 110 corresponding to the portion to block the first ventilation hole 111 at the portion to reduce the ventilation volume of the portion.

[0063] Conversely, when the first adjusting body 120 is removed from the main body 110, the first adjusting body 120 no longer blocks the first ventilation holes 111. At this point, the first ventilation holes 111 in that area are open, effectively increasing the ventilation volume of the first ventilation holes 111 in that area, thereby dissipating heat and cooling the components in the corresponding area. For example, when the components in that area generate a high amount of heat and require high heat dissipation, the first adjusting body 120 can be removed from the main body 110 corresponding to that area, leaving the first ventilation holes 111 in that area open and connected. This allows a large amount of air to pass through the first ventilation holes 111, thereby significantly improving the cooling effect in that area.

[0064] For details, see Figure 4 and Figure 5 As shown, the first adjusting body 120 can be located in the first ventilation hole 111 and used to block at least part of the first ventilation hole 111. In addition, the first adjusting body 120 can be detachably arranged in the first ventilation hole 111, and the first adjusting body 120 can be used to open the first ventilation hole 111 after being detached. For example, see Figure 4 As shown, when the first adjusting body 120 is located in the first ventilation hole 111, the first adjusting body 120 can block part of the first ventilation hole 111 so that part of the first ventilation hole 111 is in a closed state and the other part is in an open state, allowing a small amount of air flow to pass through the first ventilation hole 111, thereby effectively reducing the ventilation volume of the first ventilation hole 111.

[0065] Alternatively, the first adjusting body 120 may also completely block the first ventilation hole 111 so that the first ventilation hole 111 is in a completely closed state, preventing air from passing through the first ventilation hole 111 .

[0066] See also Figure 5 As shown, when the first adjustment body 120 is removed from the first ventilation hole 111 , the first ventilation hole 111 can be in a fully open state, allowing air flow to pass through the first ventilation hole 111 .

[0067] For example, during the use of the server 10, the user can adjust the first adjustment body 120 according to the heat dissipation requirements of the server 10. For example, when the portion corresponding to the first adjustment body 120 has no heat dissipation requirements or has a small heat dissipation requirement, for example, see Figure 2 As shown, the air guide cover is in the air inlet direction (i.e. Figure 2 There is no device that needs to dissipate heat downstream of the first ventilation hole 111 (in the airflow direction), that is, there is no heat dissipation device on the side of the air guide that faces away from the air inlet direction. In this case, the first adjustment body 120 can be positioned within the first ventilation hole 111 to block the first ventilation hole 111, thereby preventing airflow from passing through the first ventilation hole 111 in this area.

[0068] On the contrary, when the heat dissipation requirement of the part corresponding to the first regulating body 120 is high, for example, see Figure 1 As shown, the air guide cover is in the air inlet direction (i.e. Figure 1 The downstream of the air guide cover has a device that needs to dissipate heat, that is, the air guide cover has a heat dissipation device (for example, Figure 1 At this time, the first adjustment body 120 can be removed from the first ventilation hole 111 so that the first ventilation hole 111 can be in an open state so that air can pass through the first ventilation hole 111 for heat dissipation and cooling.

[0069] In this way, by disassembling the first adjusting body 120 in the first ventilation hole 111, the ventilation volume at the first ventilation hole 111 can be effectively controlled, the flexibility and reliability of the air volume adjustment of the air guide cover 100 can be effectively improved, the air volume adjustment work of the air guide cover 100 can be simplified, and the air volume adjustment efficiency of the air guide cover 100 can be improved.

[0070] Continue to see Figure 5 As shown, a gap 113 may be provided between the outer periphery of the first adjusting body 120 and the inner wall of the first ventilation hole 111, and a connecting rib 121 may be provided between the outer periphery of the first adjusting body 120 and the inner wall of the first ventilation hole 111. The first adjusting body 120 and the first ventilation hole 111 may be detachably connected via the connecting rib 121. When the first adjusting body 120 needs to be removed from the first ventilation hole 111, the connecting rib 121 may be broken to separate the outer periphery of the first adjusting body 120 from the inner wall of the first ventilation hole 111. The first adjusting body 120 is then removed from the first ventilation hole 111, allowing the first ventilation hole 111 to be opened, allowing a large amount of air to pass through the first ventilation hole 111 to dissipate heat and cool the components in the corresponding parts of the server 10.

[0071] The connecting rib 121 is relatively thin and can be easily broken to remove the first adjusting body 120 from the first ventilation hole 111. In this way, the first adjusting body 120 can be quickly removed from the first ventilation hole 111. Its structure is simple, and the operation is convenient, fast and reliable. It can effectively improve the convenience of air volume adjustment, simplify the overall structure of the air guide cover 100, and thus effectively reduce the cost of the air guide cover 100.

[0072] The embodiment of the present application provides a first ventilation hole 111 on the main body 110 of the air scoop 100, and disposes a detachable first adjustment body 120 in the first ventilation hole 111. The first adjustment body 120 is connected to the first ventilation hole 111 by a connecting rib 121. By removing the first adjustment body 120 from the first ventilation hole 111 on the main body 110, the ventilation volume of the ventilation hole on the main body 110 can be adjusted, so that the air scoop 100 can flexibly distribute the air volume. The connecting rib 121 is relatively small and easy to break, so the first adjustment body 120 can be quickly removed from the first ventilation hole 111, which can effectively improve the flexibility and reliability of the air volume adjustment of the air scoop 100. The air scoop 100 has a simple structure, is easy to operate, and can flexibly and efficiently adjust the air volume. The structure of the air scoop 100 can be effectively simplified, and the assembly difficulty and production cost of the air scoop 100 can be reduced.

[0073] Figure 6 A schematic diagram of the dimensions of a connecting rib and gap provided in an embodiment of the present application.

[0074] See also Figure 6 As shown, the width of the connecting rib 121 can be L1, and the value of L1 can be 1mm to 10mm. For example, the value of the width L1 of the connecting rib 121 can be 1mm, 1.5mm, 2mm, 3mm, 5mm, 8mm, or 10mm. This can effectively reduce the size of the connecting rib 121 while ensuring the connectivity between the first adjusting body 120 and the first ventilation hole 111. This can effectively reduce the structural strength of the connecting rib 121, thereby facilitating quick breaking of the connecting rib 121. This effectively improves the reliability of disassembly between the first adjusting body 120 and the first ventilation hole 111.

[0075] Continue to see Figure 6As shown, the width of gap 113 can be L2, and the value of L2 can be 0.5mm to 5mm. For example, the value of width L2 of gap 113 can be 0.5mm, 1mm, 2mm, 3mm, or 5mm. This makes it easier for the user to observe the position of connecting rib 121 through gap 113, so that during the process of disassembling first adjusting body 120, connecting rib 121 can be accurately broken, thereby removing first adjusting body 120 from first ventilation hole 111. Furthermore, it can also reduce or avoid the gap 113 being too large and affecting the ventilation volume of that part, helping to improve the accuracy of air volume adjustment in the corresponding part.

[0076] Figure 7 A schematic structural diagram of a first adjusting body and connecting ribs provided in an embodiment of the present application.

[0077] See also Figure 7 As shown, in the thickness direction of the first adjusting body 120, the size of the connecting rib 121 can be smaller than the size of the first adjusting body 120, that is, the thickness of the connecting rib 121 is smaller than the thickness of the first adjusting body 120. This can effectively reduce the thickness of the connecting rib 121 and the structural strength of the connecting rib 121, so that the user can break the connecting rib 121 with less force, thereby facilitating the removal of the first adjusting body 120 from the connecting rib 121 and from the first ventilation hole 111, which can effectively improve the disassembly efficiency of the first adjusting body 120 and enhance the reliability of air volume adjustment.

[0078] In the embodiment of the present application, the number of connecting ribs 121 can be greater than or equal to two. For example, the number of connecting ribs 121 can be two, or as shown in the figure, four. The connecting ribs 121 can be evenly distributed around the periphery of the first adjusting body 120 to connect the first adjusting body 120 to the first ventilation hole 111. This can improve the reliability of the connection between the first adjusting body 120 and the first ventilation hole 111, reduce or prevent the first adjusting body 120 from falling during the process of blocking the first ventilation hole 111, and help improve the structural stability of the air scoop 100.

[0079] Alternatively, in some examples, the connecting ribs 121 may be unevenly distributed, for example, they may be densely distributed on one side of the first adjusting body 120 and sparsely distributed on the other side of the first adjusting body 120. For example, they may be densely distributed on the left side of the first adjusting body 120 and sparsely distributed on the right side of the first adjusting body 120.

[0080] The connection between the first adjusting body 120 and the first ventilation hole 111 is weaker on the side where the connecting ribs 121 are more sparsely distributed. When the first adjusting body 120 needs to be removed, the side where the connecting ribs 121 are more sparsely distributed (i.e., the left side of the first adjusting body 120) can be pressed to separate the first adjusting body 120 from the first ventilation hole 111. This makes it easier to remove the first adjusting body 120 from the first ventilation hole 111, saves disassembly force, and improves the efficiency of disassembly of the first adjusting body 120.

[0081] The number of the first ventilation holes 111 can be multiple, for example, the number of the first ventilation holes 111 can be 2, 3 or 4, and the multiple first ventilation holes 111 can be arranged at intervals. Each first ventilation hole 111 can have a detachably connected first adjustment body 120. In this way, the air volume of each first ventilation hole 111 can be adjusted. When the ventilation volume of a first ventilation hole 111 needs to be increased, the first adjustment body 120 in the corresponding first ventilation hole 111 can be removed so that the corresponding first ventilation hole 111 can be in an open state, thereby effectively increasing the air volume of the first ventilation hole 111 in that part, and effectively improving the flexibility of adjusting the air volume of the first ventilation holes 111.

[0082] Figure 8 This is a structural diagram of another air guide cover provided in an embodiment of the present application when the second adjustment body is not provided. Figure 9 for Figure 8 The enlarged image of area B in the middle, Figure 10 This is a schematic structural diagram of a second regulating body provided in an embodiment of the present application. Figure 11 This is a structural diagram of another air guide provided in an embodiment of the present application after a second adjustment body is provided. Figure 12 for Figure 11 Magnified view of area C in the middle.

[0083] See also Figure 8 and Figure 9 As shown, the main body 110 may further be provided with a second ventilation hole 112, see Figure 10 As shown, the air guide cover 100 may further include a second adjustment body 130, combined with Figure 11 and Figure 12 As shown, the second adjusting body 130 can cover the second ventilation hole 112 and be detachably connected to the main body 110. The second adjusting body 130 can be used to cover the second ventilation hole 112 and open the second ventilation hole 112 after being disassembled.

[0084] For example, the second adjusting body 130 may be a blocking piece. When the second adjusting body 130 is placed over the second ventilation hole 112, the second ventilation hole 112 may be blocked, so that the first ventilation hole 111 is in a closed state, thereby preventing air from passing through the second ventilation hole 112. When the second adjusting body 130 is removed from the main body 110, the second ventilation hole 112 may be opened, allowing air to pass through the second ventilation hole 112.

[0085] For example, during use of the server 10, the user can adjust the second adjustment body 130 based on the internal heat dissipation requirements of the server 10 to adjust the ventilation volume of the second ventilation holes 112 in the corresponding area. For example, when the area corresponding to the second ventilation holes 112 does not require heat dissipation, the second adjustment body 130 can be installed on the main body 110 to block the second ventilation holes 112, thereby preventing airflow from passing through the second ventilation holes 112 in that area.

[0086] On the contrary, when the heat dissipation demand of the part corresponding to the second ventilation hole 112 is higher, the second adjustment body 130 can be removed from the main body 110 so that the second ventilation hole 112 of the corresponding part can be opened, so that air can pass through the second ventilation hole 112 for heat dissipation and temperature reduction.

[0087] In this way, by installing and disassembling the second adjusting body 130 on the main body 110, the ventilation volume at the second ventilation hole 112 can be effectively controlled, which can effectively improve the flexibility and reliability of the air volume adjustment of the air guide cover 100, simplify the air volume adjustment work of the air guide cover 100, and improve the air volume adjustment efficiency of the air guide cover 100.

[0088] For example, in the embodiment of the present application, the second adjusting body 130 is detachably connected to the main body 110 by gluing. Figure 10 As shown, the regulating body may have an adhesive layer 131, for example, a glue layer. When the second regulating body 130 is required to block the second ventilation hole 112, the second regulating body 130 may be attached to the main body 110 so that the second regulating body 130 can be bonded to the main body 110 via the adhesive layer 131 thereon to block the second ventilation hole 112.

[0089] When the second ventilation holes 112 need to be ventilated and do not need to be blocked, the second adjustment body 130 can be torn off from the main body 110 to separate the adhesive layer 131 on the second adjustment body 130 from the main body 110. In this way, the second adjustment body 130 can be removed from the main body 110, and the second ventilation holes 112 at the corresponding locations can be opened, allowing air to pass through the second ventilation holes 112, thereby increasing the ventilation volume at the corresponding locations.

[0090] The adhesive connection has a simple structure, low cost, and is simple and quick to operate. It can effectively simplify the structure of the detachable connection between the second adjusting body 130 and the main body 110, improve the convenience of assembly and disassembly between the second adjusting body 130 and the main body 110, and reduce the implementation cost of the detachable connection between the second adjusting body 130 and the main body 110.

[0091] Figure 13 A schematic diagram of the positional relationship between an air guide hood and the airflow direction provided in an embodiment of the present application.

[0092] See also Figure 13 As shown, the second adjusting body 130 can be located on the side of the main body 110 facing the air inlet direction (i.e., the airflow direction), so that the airflow blows from the air inlet direction to the second adjusting body 130, and the main body 110 can support the second adjusting body 130, so that the bonding between the second adjusting body 130 and the main body 110 can be more firm and reliable, and can effectively reduce or avoid separation between the second adjusting body 130 and the main body 110, thereby effectively improving the reliability and stability of the connection between the second adjusting body 130 and the main body 110.

[0093] The second regulating body 130 may be a thin plastic sheet. For example, the thickness of the second regulating body 130 may be 0.2 mm to 0.4 mm. For example, the thickness of the second regulating body 130 may be 0.2 mm, 0.25 mm, 0.3 mm, 0.4 mm, etc. Plastic sheets of such thickness are easy to cut and obtain, which can effectively reduce the cost of the second regulating body 130.

[0094] Continue to see Figure 12 and Figure 13 As shown, the air scoop 100 may further include a limiting portion 140. The limiting portion 140 may be located on the main body 110. When the second adjusting body 130 is located on the main body 110, the second adjusting body 130 may abut against the limiting portion 140. The limiting portion 140 may limit the second adjusting body 130 to reduce or prevent the second adjusting body 130 from shifting when attached to the main body 110, thereby preventing the second adjusting body 130 from shifting and affecting the shielding effect of the second ventilation hole 112. This is beneficial for improving the accuracy of the second adjusting body 130 in blocking the second ventilation hole 112, thereby improving the accuracy of the air volume adjustment of the air scoop 100.

[0095] Continue to see Figure 12 As shown, the number of the second ventilation holes 112 can be multiple, and the multiple second ventilation holes 112 can be arranged in M rows and N columns, where M is greater than or equal to 1 and N is greater than or equal to 1. For example, the value of M can be 1, 2, 3 or 4, and the value of N can also be 1, 2, 3, 4 or 5. For example, in the embodiment of the present application, the second ventilation holes 112 can be as follows Figure 9As shown in , they are distributed in 3 rows and 5 columns.

[0096] This effectively increases the number of second ventilation holes 112. By using the second regulating body 130 to block the second ventilation holes 112 in different ways, the air scoop 100 can achieve a variety of different air volume adjustment effects, effectively increasing the diversification and flexibility of the air volume adjustment of the air scoop 100.

[0097] The second adjusting body 130 can block at least one of the second ventilation holes 112. For example, the size of the second adjusting body 130 can be set smaller, and the smaller second adjusting body 130 can block one of the second ventilation holes 112, thereby sealing the corresponding second ventilation hole 112 and preventing air from passing through the corresponding second ventilation hole 112.

[0098] Alternatively, the size of the second regulating body 130 can be set larger, and the larger second regulating body 130 can simultaneously block multiple second ventilation holes 112, so that the corresponding multiple second ventilation holes 112 are all closed, preventing air from passing through the corresponding multiple second ventilation holes 112.

[0099] For example, in the embodiment of the present application, the second adjustment body 130 can be as follows Figure 12 The second adjusting body 130 simultaneously blocks a row of second ventilation holes 112, so that the entire row of second ventilation holes 112 is in a closed state, preventing air from passing through the corresponding parts of the row of second ventilation holes 112. Alternatively, the second adjusting body 130 can also block two or three rows of second ventilation holes 112 at the same time.

[0100] In the specific application process, the second adjusting body 130 can be set to multiple sizes and specifications, so that the user can use second adjusting bodies 130 of different sizes according to the actual air volume adjustment needs to block the second ventilation holes 112 in different parts, thereby adjusting the air volume in different parts.

[0101] In this way, the second ventilation hole 112 can be flexibly blocked in different forms through the second adjusting body 130, so that the second ventilation hole 112 can be blocked in a variety of different blocking forms, thereby achieving different air volume adjustments, effectively improving the flexibility of air volume adjustment of the air guide cover 100.

[0102] Figure 14 A schematic structural diagram of another air guide hood provided in an embodiment of the present application.

[0103] In the embodiment of the present application, the air guide cover 100 may only have the first ventilation hole 111 and the first adjustment body 120 (eg Figure 3Alternatively, the air guide cover 100 may also only have the second ventilation hole 112 and the second adjustment body 130 (as shown in Figure 11 Alternatively, in some examples, see Figure 14 As shown, the air guide cover 100 may also have a first ventilation hole 111 and a first adjustment body 120 , and a second ventilation hole 112 and a second adjustment body 130 .

[0104] For example, a first ventilation hole 111 and a second ventilation hole 112 may be respectively provided on the main body 110, and a detachable second adjustment body 130 may be provided in the first ventilation hole 111. A detachable second adjustment body may be provided on the second ventilation hole 112. The second adjustment body 130 can adjust the ventilation volume of the first ventilation hole 111, and the second adjustment body can adjust the ventilation volume of the second ventilation hole 112. During use, the second adjustment body 130 and the second adjustment body can be flexibly adjusted according to the heat dissipation requirements of the server 10, so that the air guide cover can achieve a variety of different air volume distribution effects, which can effectively improve the flexibility of the air guide cover in distributing air volume and enhance the heat dissipation effect and heat dissipation efficiency of the server 10.

[0105] Specifically, the form of the ventilation holes 111 and the form of the adjustment body on the air guide cover 100 can be selected and set according to the specific application scenario.

[0106] In the description of the embodiments of this application, it should be noted that, unless otherwise expressly specified or limited, the terms "mounted," "connected," and "connected" should be understood in a broad sense. For example, they may refer to a fixed connection, an indirect connection via an intermediate medium, internal communication between two components, or an interaction between two components. Those skilled in the art will understand the specific meanings of the above terms in the embodiments of this application based on specific circumstances.

[0107] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the embodiments of the present application, rather than to limit them. Although the embodiments of the present application have been described in detail with reference to the aforementioned embodiments, ordinary technicians in this field should understand that they can still modify the technical solutions recorded in the aforementioned embodiments, or replace some or all of the technical features therein with equivalents. These modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present application.

Claims

1. A server air guide cover, characterized in that: include: A main body (110), wherein a first ventilation hole (111) is provided on the main body (110); a first regulating body (120); The first regulating body (120) is located in the first ventilation hole (111), a gap (113) is formed between the outer periphery of the first regulating body (120) and the inner wall of the first ventilation hole (111), the outer periphery of the first regulating body (120) is connected to the inner wall of the first ventilation hole (111) via a connecting rib (121), and the first regulating body (120) is detachably connected to the inner wall of the first ventilation hole (111) via the connecting rib (121); The first adjusting body (120) is used to keep the first ventilation hole (111) in an open state after being disassembled.

2. The server air duct according to claim 1, characterized in that: In the thickness direction of the first regulating body (120), the size of the connecting rib (121) is smaller than the size of the first regulating body (120).

3. The server air duct according to claim 1 or 2, characterized in that: The width of the connecting rib (121) is 1 mm to 10 mm.

4. The server air duct according to claim 1 or 2, characterized in that: The width of the gap (113) is 0.5 mm to 5 mm.

5. The server air duct according to claim 1 or 2, characterized in that: The number of the connecting ribs (121) is greater than or equal to 2, and the connecting ribs (121) are evenly distributed on the periphery of the first regulating body (120).

6. The server air duct according to claim 1 or 2, characterized in that: There are a plurality of first ventilation holes (111), and each first ventilation hole (111) has a detachably connected first regulating body (120) therein.

7. The server air duct according to claim 1 or 2, characterized in that: The main body (110) is further provided with a second ventilation hole (112), and the server air guide cover further includes a second adjustment body (130); The second adjusting body (130) is covered on the second ventilation hole (112) and is detachably connected to the main body (110). The second adjusting body (130) is used to cover the second ventilation hole (112) and to open the second ventilation hole (112) after being disassembled.

8. The server air duct according to claim 7, characterized in that: The invention also includes a limiting portion (140), wherein the limiting portion (140) is located on the main body (110), and when the second adjusting body (130) is located on the main body (110), the second adjusting body (130) abuts against the limiting portion (140).

9. The server air duct according to claim 7, characterized in that: The second regulating body (130) is located on a side of the main body (110) facing the air inlet direction.

10. A server, characterized in that: The invention comprises a shell and a server air scoop as claimed in any one of claims 1 to 9, wherein the server air scoop is located in the shell.