Server case

By setting up a movable vacuum cleaner and multi-dimensional motion components in the server chassis, combined with liquid-cooled air-cooled heat dissipation, the problem of low dust cleaning efficiency in the existing technology is solved, and all-round cleaning and temperature control is achieved, improving the operating stability and safety of the server.

CN120491773APending Publication Date: 2025-08-15INSPUR SUZHOU INTELLIGENT TECH CO LTD

Patent Information

Application Number
CN202510629602.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-15
Publication Date
2025-08-15

AI Technical Summary

Technical Problem

The dust removal components of the existing server chassis can only be height-adjusted on one side of the chassis, resulting in low dust removal efficiency and difficulty in effectively removing dust from the surface of electronic components, affecting the heat dissipation and stability of the server.

Method used

Design a server case with a built-in vacuum head that can move in any direction, and the three-dimensional movement of the vacuum head is achieved through multiple moving components, combining liquid-cooled and air-cooled cooling modes to ensure all-round cleaning and temperature control.

Benefits of technology

It realizes all-round cleaning of the server chassis, improves dust cleaning efficiency, reduces heat dissipation problems and potential failures caused by dust accumulation, and ensures the security, stability and maintenance convenience of the server.

✦ Generated by Eureka AI based on patent content.

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Abstract

The server case comprises a case body, a temperature control assembly and a cleaning assembly, a containing space is formed in the case body, the temperature control assembly is arranged in the containing space, the temperature control assembly is provided with a temperature control flow channel, the interior of the temperature control flow channel is suitable for refrigerant and / or gas flowing, the cleaning assembly is arranged in the case body, and the cleaning assembly is provided with a dust collection head. The dust collection head is located in the containing space, and the dust collection head can move in any direction in the containing space. According to the server case, through the dust collection head which is arranged in the containing space and can move in any direction, all-directional cleaning of the interior of the server case is achieved, the dust removal efficiency and the cleaning effect in the server case are improved, it is ensured that even electronic elements in complex layout can be effectively cleaned, and the service life of the server case is prolonged. And the heat dissipation problem and potential faults caused by dust accumulation are reduced, so that the operation safety, stability and maintenance convenience of the server are ensured.
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Description

Technical Field

[0001] The present application relates to the field of server technology, and in particular to a server chassis. Background Art

[0002] Related art indicates that a server chassis is used to combine mounting panels, plug-ins, plug-in boxes, electronic components, devices, and mechanical parts and components to form a complete installation box. A server cabinet, consisting of a frame and a cover, typically has a rectangular shape and is placed on the ground. It provides an appropriate environment and safety protection for the normal operation of electronic equipment. A server chassis in the prior art includes a server chassis body; a dust removal assembly extending through one side of the server chassis body; and a cooling assembly fixedly connected to one side of the top of the server chassis body.

[0003] That is to say, although the existing server chassis is equipped with dust removal components and cooling components, it can only drive the hose to adjust the height on one side of the chassis during use. As a result, the dust on the electronic components in the chassis opposite to the hose is not easily absorbed by the vacuum cleaner during vacuuming, resulting in low dust cleaning efficiency and poor practicality. Summary of the Invention

[0004] The present application aims to solve at least one of the technical problems existing in the prior art. To this end, the present application is to propose a server chassis that achieves all-round cleaning inside the server chassis and improves the dust removal efficiency and cleaning effect inside the server chassis.

[0005] According to the first aspect of the present application, the server chassis includes: a box body, in which a storage space is formed; a temperature control component, which is arranged in the storage space, the temperature control component has a temperature control flow channel, the temperature control flow channel is suitable for the flow of refrigerant and / or gas, and the temperature control component is used to control the temperature in the storage space; a cleaning component, which is arranged in the box body, the cleaning component has a dust collection head, the dust collection head is located in the storage space, and the dust collection head can move in any direction in the storage space.

[0006] According to the server chassis of the present application, by providing a vacuum head that can move in any direction within the accommodating space, the vacuum head is not limited to the height adjustment of a single dimension, but can reach any position as needed, comprehensively covering all areas, and effectively removing dust from various positions within the accommodating space, thereby achieving all-round cleaning inside the server chassis, improving the dust cleaning efficiency and cleaning effect inside the server chassis, ensuring that even electronic components in complex layouts can be effectively cleaned, reducing heat dissipation problems and potential failures caused by dust accumulation, thereby ensuring the safety, stability and maintenance convenience of server operation.

[0007] In some feasible embodiments of the present application, the cleaning component includes: an adjustment frame; a first motion component, the first motion component is arranged in the accommodating space, the first motion component includes: a first screw and a first driving member, the first screw extends along the second direction, and both ends of the first screw are rotatably arranged on the box body, the adjustment frame is threadedly connected to the first screw, the first driving member is arranged at at least one end of the first screw to drive the first screw to rotate and drive the adjustment frame to move in the second direction; a second motion component, the second motion component includes: a second screw, a second driving member, An active rod, a driven gear set and a motion block, the second lead screw extends along the first direction, and one end of the second lead screw is rotatably connected to the adjustment frame, the other end of the second lead screw is connected to the first gear of the driven gear set, the active rod extends along the second direction, the second gear of the driven gear set is sleeved on the active rod and meshes with the first gear, both ends of the active rod are rotatably provided on the box body, the motion block is threadedly connected to the second lead screw, and the second driving member is provided at at least one end of the active rod to drive the active rod to rotate and drive the motion block to move in the first direction.

[0008] In the above technical solution, since the moving block is installed on the adjusting frame, the moving block can move in the second direction together with the adjusting frame, and the moving block itself can move in the first direction, thereby realizing the free movement of the vacuum head on the horizontal plane, so that the vacuum head in the cleaning assembly can cover all areas within the same horizontal plane inside the server chassis, effectively improving the dust cleaning efficiency and reducing heat dissipation problems and other potential failures caused by dust accumulation.

[0009] In some feasible embodiments of the present application, the cleaning component also includes: a third motion component, the third motion component is arranged on the motion block, and the third motion component includes: a push rod and a third driving member, the push rod extends in the up and down directions, the upper end of the push rod is connected to the motion block, the lower end of the push rod is connected to the dust collector head, and the third driving member is connected to the push rod to adjust the length of the push rod.

[0010] In the above technical solution, since the push rod is connected between the dust collector head and the moving block, and the moving block is installed on the adjusting frame, the moving block can move in the second direction together with the adjusting frame, and the moving block itself can move in the first direction, thereby realizing the free movement of the dust collector head in the three-dimensional space, so that the dust collector head in the cleaning assembly can cover all areas inside the server chassis, effectively improving the dust cleaning efficiency, and reducing heat dissipation problems and other potential failures caused by dust accumulation.

[0011] In some feasible embodiments of the present application, the first screws include two, the two first screws are arranged at intervals in the first direction, the first driving member is connected to one of the first screws, and the two first screws are connected by a transmission belt, a protective box is provided on the outside of the box, and the first driving member and the second driving member are provided in the protective box.

[0012] In the above technical solution, when the first driving member is started, it drives the first screw connected to it to rotate around the axis of the first screw itself, and drives the other first screw to rotate synchronously through the transmission of the transmission belt. The adjusting frame is threadedly connected to the two first screws, so that the adjusting frame can move smoothly along the second direction. In this way, through the transmission connection between the two first screws and the transmission belt, the load-bearing capacity and operation smoothness of the first motion component are effectively improved.

[0013] In some feasible embodiments of the present application, a dust suction module is provided on the moving block, and the dust suction head is connected and communicated with the dust suction module through a dust suction pipe.

[0014] In some feasible embodiments of the present application, a limiting groove is formed on the active rod, the limiting groove extends along the second direction, and the second gear forms a limiting rib, the limiting rib is located in the limiting groove to limit the position of the second gear in the radial direction.

[0015] In the above technical solution, by setting the limiting groove and the limiting rib, the active rod and the second gear cooperate with each other through the limiting groove and the limiting rib, which can prevent the second gear from radially offsetting or shaking during operation, thereby ensuring smooth transmission of the adjustment frame.

[0016] In some feasible embodiments of the present application, the box body has a mounting plate and a bottom plate arranged at intervals in the upper and lower directions, and a mounting cavity is defined between the mounting plate and the bottom plate. The temperature control component includes: a liquid cooling unit, and the liquid cooling unit is arranged in the mounting cavity. The liquid cooling unit includes: a liquid cooling pipe, a cooling module and a pump body. The liquid cooling pipe has a liquid inlet end and a liquid outlet end. The temperature control flow channel is formed as a liquid cooling flow channel, and the liquid cooling flow channel is formed in the liquid cooling pipe. The cooling module is arranged on one of the liquid inlet end and the liquid outlet end, and the pump body is arranged On the other of the liquid inlet end and the liquid outlet end, the liquid cooling tube extends back and forth in a first direction along a second direction perpendicular to the first direction, and the liquid inlet end is connected to the liquid outlet end through a connecting tube; an air cooling unit, the air cooling unit is arranged in the accommodating space, the air cooling unit includes a fan module, the fan module is arranged on the bottom plate, the temperature control flow channel is formed as an air cooling flow channel, the air cooling flow channel is connected to the accommodating space and the outside of the box, and the fan module is used to drive the gas in the accommodating space to exchange with the gas outside the box.

[0017] In the above technical solution, a dual heat dissipation mode is formed by setting up a liquid cooling unit and an air cooling unit, which can significantly improve the heat dissipation capacity, increase the heat exchange efficiency, and ensure the heat exchange effect.

[0018] In some feasible embodiments of the present application, a through opening is formed on the base plate, and the fan module is arranged at the through opening. The fan module includes: a fan, a filter plate and a cleaning blade. The filter plate covers the through opening, and a plurality of filter holes are formed on the filter plate. The mounting cavity is connected to the outside of the box body through the plurality of filter holes. The fan is rotatably connected relative to the filter plate, and the cleaning blade is arranged on the side of the filter plate away from the fan. The cleaning blade is rotatably connected relative to the filter plate.

[0019] In the above technical solution, by setting a filter plate and a cleaning blade, the fan module has the ability to clean the air intake and self-cleaning. This not only effectively prevents dust from entering the box and affecting the operation of electronic components, but also realizes the automatic cleaning function of the filter plate through the cleaning blade, thereby ensuring the air intake volume and air intake speed.

[0020] In some feasible embodiments of the present application, a mounting port is formed on the mounting plate, the air cooling unit includes an air dispersion duct, the air cooling flow channel is formed in the air dispersion duct, one end of the air dispersion duct is arranged at the position of the mounting port, the mounting cavity is connected to the air cooling flow channel through the mounting port, a plurality of air outlets are formed on the side wall of the air dispersion duct, and the accommodating space is connected to the air cooling flow channel through the plurality of air outlets.

[0021] In the above technical solution, by setting a mounting port on the mounting plate, the heat dissipation pipe is connected to the mounting cavity through the mounting port, thereby realizing directional air supply from the mounting cavity to the accommodating space. At the same time, multi-point uniform heat dissipation is carried out through multiple air outlets, thereby improving the uniformity and efficiency of temperature control inside the server chassis.

[0022] In some feasible embodiments of the present application, the server chassis further includes: an exhaust assembly, which is arranged on the top of the chassis to allow the gas in the accommodating space to exchange with the gas outside the chassis.

[0023] In the above technical solution, by arranging an exhaust component on the top of the box, good ventilation and efficient heat dissipation inside the box are guaranteed, and the heated air in the accommodation space can be effectively discharged to the external environment, forming a complete air flow path. Under the joint action of the exhaust component and the fan module, the air flow speed and air intake volume are increased, thereby improving the heat dissipation effect.

[0024] Additional aspects and advantages of the present application will be given in part in the description below, and in part will become obvious from the description below, or will be learned through practice of the present application. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] In order to more clearly illustrate the embodiments of the present application, the following is a brief introduction to the drawings required for use in the embodiments. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.

[0026] Figure 1 A schematic diagram of a server chassis provided in an embodiment of the present application;

[0027] Figure 2 for Figure 1 The internal diagram of the server chassis shown in FIG;

[0028] Figure 3 for Figure 2 A partial enlarged schematic diagram of a server chassis shown in FIG.

[0029] Figure 4 for Figure 3 A local enlarged schematic diagram shown in FIG;

[0030] Figure 5 for Figure 2 Schematic diagram of the interior of the protective box of the server chassis shown in;

[0031] Figure 6 for Figure 2 The assembly diagram of the temperature control component shown in FIG;

[0032] Figure 7 for Figure 6 Schematic diagram of the liquid cooling unit shown in;

[0033] Figure 8 for Figure 6 Schematic diagram of the air cooling unit shown in .

[0034] The above drawings include the following reference numerals:

[0035] 100. Server chassis; 1. Box; 11. Mounting plate; 111. Mounting port; 12. Bottom plate; 13. Mounting cavity; 14. Accommodation space; 15. Protective box; 16. Transparent door panel; 17. Universal wheel; 18. Support leg; 2. Temperature control assembly; 21. Liquid cooling unit; 211. Liquid cooling pipe; 212. Cooling module; 213. Pump body; 214. Connecting pipe; 215. Liquid inlet pipe; 216. Limit plate; 22. Air cooling unit; 221. Fan module; 2211. Fan; 2212. Filter plate; 22121. Filter hole; 2213. Cleaning blade ;222, air duct;2221, air outlet;3, cleaning component;31, first moving component;311, first lead screw;312, first driving member;313, transmission belt;32, second moving component;321, second lead screw;322, second driving member;323, active rod;3231, limiting groove;324, moving block;325, first gear;326, second gear;3261, limiting rib;33, third moving component;331, push rod;34, adjusting frame;35, dust collector head;36, dust collector module;37, dust collector pipe;4, exhaust component. DETAILED DESCRIPTION

[0036] The following will be combined with the accompanying drawings in the embodiments of this application to clearly and completely describe the technical solutions in the embodiments of this application. Obviously, the embodiments described are only part of the embodiments of this application, not all of them. 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.

[0037] It should be noted that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc., indicating positions or positional relationships, are based on the positions or positional relationships shown in the accompanying drawings and are only for the convenience of describing the present application and simplifying the description. They do not indicate or imply that the devices or elements referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be understood as limiting the present application. The terms "mounted", "connected", and "connected" should be understood in a broad sense, for example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium, or it can be internal communication between two elements. The terms "parallel", "perpendicular", and "equal" include the situations described and situations similar to the situations described, and the range of the similar situations is within an acceptable deviation range, where the acceptable deviation range is determined by a person of ordinary skill in the art taking into account the measurement in question and the errors associated with the measurement of the specific quantity (i.e., the limitations of the measurement system). For example, "parallel" includes both absolute parallelism and approximate parallelism, where the acceptable deviation range for approximate parallelism may be, for example, within 5°; "perpendicular" includes both absolute perpendicularity and approximate perpendicularity, where the acceptable deviation range for approximate perpendicularity may also be, for example, within 5°. "Equal" includes both absolute equality and approximate equality, where the acceptable deviation range for approximate equality may be, for example, that the difference between the two is less than or equal to 5% of either. Those skilled in the art will understand the specific meanings of the above terms in this application based on the specific circumstances.

[0038] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the art to which this application belongs; the terms used herein are only for the purpose of describing specific embodiments and are not intended to limit this application; the terms "including" and "having" and any variations thereof in the specification and claims of this application and the above-mentioned figure descriptions are intended to cover non-exclusive inclusions.

[0039] In the description of the embodiments of this application, the technical terms "first" and "second" are used only to distinguish different objects and should not be understood to indicate or imply relative importance or implicitly specify the quantity, specific order, or primary and secondary relationship of the indicated technical features. In the description of the embodiments of this application, the meaning of "plurality" is more than two, unless otherwise clearly and specifically defined.

[0040] References herein to "embodiments" mean that a particular feature, structure, or characteristic described in connection with the embodiments may be included in at least one embodiment of the present application. The appearance of this phrase in various places in the specification does not necessarily refer to the same embodiment, nor does it constitute an independent or alternative embodiment that is mutually exclusive of other embodiments. It is understood, both explicitly and implicitly, by those skilled in the art that the embodiments described herein may be combined with other embodiments.

[0041] In the description of the embodiments of this application, the term "and / or" is simply a description of the association relationship between associated objects, indicating that three relationships can exist. For example, A and / or B can represent the following three situations: A exists alone, A and B exist simultaneously, and B exists alone. In addition, the character " / " in this document generally indicates that the associated objects are in an "or" relationship.

[0042] In the description of the embodiments of the present application, the term "plurality" refers to more than two (including two).

[0043] A server chassis is used to combine mounting panels, plug-ins, plug-in boxes, electronic components, devices, and mechanical parts and components to form a complete installation box. A server cabinet consists of a frame and a cover, typically has a rectangular shape, and is placed on the floor. It provides an appropriate environment and safety protection for the normal operation of electronic equipment. A server chassis in the prior art includes a server chassis body; a dust removal assembly that extends through one side of the server chassis body; and a cooling assembly that is fixedly connected to one side of the top of the server chassis body.

[0044] In other words, although existing server chassis are equipped with dust removal and cooling components, they can only drive the hose to adjust the height on one side of the chassis during use. As a result, dust on the side of the electronic components opposite the hose is not easily absorbed by the vacuum cleaner, resulting in low dust removal efficiency and poor practicality. Therefore, how to improve the dust removal efficiency and cleaning effect of server chassis has become an urgent issue.

[0045] Based on the above considerations, in order to improve the dust removal efficiency and cleaning effect in the server chassis, the applicant has designed a server chassis after in-depth research. Figures 1-8 A server chassis according to an embodiment of the present application is described.

[0046] like Figures 1-8 As shown, Figure 1 A schematic diagram of a server chassis provided in an embodiment of the present application; Figure 2 for Figure 1 The internal diagram of the server chassis shown in FIG; Figure 3 for Figure 2 A partial enlarged schematic diagram of a server chassis shown in FIG.

[0047] Figure 4 for Figure 3 A local enlarged schematic diagram shown in FIG; Figure 5 for Figure 2 Schematic diagram of the interior of the protective box of the server chassis shown in; Figure 6 for Figure 2 The assembly diagram of the temperature control component shown in FIG; Figure 7 for Figure 6 Schematic diagram of the liquid cooling unit shown in; Figure 8 for Figure 6 Schematic diagram of the air cooling unit shown in .

[0048] The server chassis 100 according to the embodiment of the present application includes: a chassis 1, a temperature control component 2 and a cleaning component 3.

[0049] Specifically, a storage space 14 is formed in the housing 1. A temperature control assembly 2 is disposed in the storage space 14. The temperature control assembly 2 has a temperature control flow channel suitable for the flow of refrigerant and / or gas. The temperature control assembly 2 is used to control the temperature in the storage space 14. A cleaning assembly 3 is disposed in the housing 1. The cleaning assembly 3 has a dust collection head 35. The dust collection head 35 is located in the storage space 14 and is movable in any direction within the storage space 14. Thus, by disposing the dust collection head 35 movable in any direction within the storage space 14, all-round cleaning of the interior of the server chassis 100 is achieved, improving the dust removal efficiency and cleaning effect within the server chassis 100, ensuring that even electronic components in complex layouts can be effectively cleaned, and reducing heat dissipation problems and potential failures caused by dust accumulation.

[0050] It can be understood that the accommodating space 14 formed in the box body 1 is used to install electronic components, plug-ins and other components. The box body 1 plays a role in protecting the electronic components, plug-ins and other components to prevent them from being damaged by impact; the temperature control component 2 is arranged in the accommodating space 14, and the temperature control component 2 has a temperature control flow channel, and the refrigerant and / or gas flows in the temperature control flow channel to achieve temperature control in the accommodating space 14. The flow of the refrigerant and / or gas in the temperature control flow channel can effectively absorb the heat generated during the operation of the server, ensuring that the inside of the server is always maintained within a suitable operating temperature range, avoiding performance degradation or hardware damage caused by overheating; the cleaning component 3 includes a dust collection head 35, which is located in the accommodating space 14. The dust collection head 35 can move in any direction in the accommodating space 14. In this way, the dust collection head 35 is not limited to a single-dimensional height adjustment, but can reach any position as needed, thereby more comprehensively covering all areas and effectively removing dust from various positions in the accommodating space 14, thereby improving the dust cleaning efficiency and cleaning effect, and ensuring the safety, stability and maintenance convenience of the server operation.

[0051] For example, refer to Figure 2 As shown, the housing 1 has a storage space 14, and the temperature control assembly 2 is disposed in the storage space 14. The bottom of the housing 1 is provided with universal wheels 17. By pushing the server chassis 100, the server chassis 100 can be moved, making it easier for the operator to move the server chassis 100. The bottom of the housing 1 is provided with retractable support legs 18. When the operator wants to move the server chassis 100 to the target location, the operator retracts the support legs 18, causing the server chassis 100 to move downward. The universal wheels 17 contact the ground, and the support legs 18 separate from the ground, making it easier for the operator to move the server chassis 100. After moving the server chassis 100 to the target location, the operator extends the support legs 18 to support the entire server chassis 100 away from the ground, allowing the server chassis 100 to be stably placed on the ground and preventing displacement. A transparent door panel 16 is provided on one side of the server chassis 100 to allow the operator to observe the situation inside the storage space 14. The dust removal assembly's suction head 35 is located within the storage space 14 and is movable in the vertical, first, and second directions within the storage space 14, reaching any desired location. This allows for more comprehensive coverage of all areas and effective removal of dust from various locations within the storage space 14. The temperature control assembly 2 utilizes both air and liquid cooling. The air cooling system dissipates heat from the refrigerant and cools the air within the storage space 14, effectively absorbing heat generated during server operation and ensuring that the server interior remains within a suitable operating temperature range, preventing performance degradation or hardware damage caused by overheating.

[0052] According to the server chassis 100 of the embodiment of the present application, by providing a vacuum head 35 that can move in any direction within the accommodating space 14, the vacuum head 35 is not limited to a single-dimensional height adjustment, but can reach any position as needed, comprehensively covering all areas, and effectively removing dust from various positions within the accommodating space 14, thereby achieving all-round cleaning of the interior of the server chassis 100, improving the dust removal efficiency and cleaning effect within the server chassis 100, ensuring that electronic components even in complex layouts can be effectively cleaned, reducing heat dissipation problems and potential failures caused by dust accumulation, thereby ensuring the safety, stability and maintenance convenience of server operation.

[0053] In any embodiment of the present application, the cleaning component 3 includes: an adjustment frame 34, a first motion component 31 and a second motion component 32, the first motion component 31 is arranged in the accommodating space 14, the first motion component 31 includes: a first screw 311 and a first driving member 312, the first screw 311 extends along the second direction, and both ends of the first screw 311 can be rotatably provided on the box body 1, the adjustment frame 34 is threadedly connected to the first screw 311, and the first driving member 312 is provided at at least one end of the first screw 311 to drive the first screw 311 to rotate and drive the adjustment frame 34 to move in the second direction. Therefore, when the first driving member 312 is started, the first driving member 312 drives the first screw 311 to rotate around its own axis. Since the adjusting frame 34 and the first screw 311 are connected by a threaded connection, when the first screw 311 rotates, the adjusting frame 34 will move along the axial direction of the first screw 311. The dust collector head 35 is connected to the adjusting frame 34, and the dust collector head 35 moves with the movement of the adjusting frame 34, thereby realizing the movement of the dust collector head 35 in the second direction.

[0054] like Figure 2 As shown, it can be understood that the first screw 311 moves along the second direction (such as Figure 2 The first screw 311 extends in the second direction as shown, and both ends of the first screw 311 are rotatably connected to the box body 1 relative to the box body 1. The first driving member 312 is provided at one end of the first screw 311. The first driving member 312 is used to drive the first screw 311 to rotate around its own axis. The adjusting frame 34 is threadedly connected to the first screw 311. The adjusting frame 34 moves along the second direction as the first screw 311 rotates. The dust collector head 35 is connected to the adjusting frame 34, so the dust collector head 35 moves following the movement of the adjusting frame 34.

[0055] Optionally, in order to reduce the friction between the first screw 311 and the box body 1 during rotation and improve the rotation smoothness of the first screw 311, a bearing or a sleeve is arranged between the first screw 311 and the box body 1, thereby reducing the friction coefficient between the first screw 311 and the box body 1 and ensuring that the first screw 311 and the box body 1 can rotate smoothly relative to each other.

[0056] Furthermore, the second motion component 32 includes: a second lead screw 321, a second driving member 322, an active rod 323, a driven gear set and a motion block 324, the second lead screw 321 extends along the first direction, and one end of the second lead screw 321 is rotatably connected to the adjustment frame 34, the other end of the second lead screw 321 is connected to the first gear 325 of the driven gear set, the active rod 323 extends along the second direction, the second gear 326 of the driven gear set is sleeved on the active rod 323 and meshed with the first gear 325, both ends of the active rod 323 are rotatably provided on the box body 1, the motion block 324 is threadedly connected to the second lead screw 321, and the second driving member 322 is provided at at least one end of the active rod 323 to drive the active rod 323 to rotate and drive the motion block 324 to move in the first direction. Therefore, when the second driving member 322 drives the active rod 323 to rotate, the active rod 323 rotates around its own axis, and the second gear 326 on the active rod 323 rotates around the axis of the active rod 323 along with the active rod 323, and transmits power to the second lead screw 321 through the first gear 325 meshing with the second gear 326, so that the second lead screw 321 rotates around its own axis. Since the moving block 324 and the second lead screw 321 are connected by a threaded connection, when the second lead screw 321 rotates, the moving block 324 will move along the axial direction of the second lead screw 321. The moving block 324 is relatively movably connected to the adjusting frame 34, and the dust collector 35 is connected to the moving block 324. The dust collector 35 moves with the movement of the moving block 324, thereby realizing the movement of the dust collector 35 in the first direction.

[0057] like Figure 3 As shown, it can be understood that the second screw 321 moves along the first direction (such as Figure 3 The second gear 325 is connected to the adjusting frame 34 so as to rotate with the second gear 326. The second gear 326 is connected to the adjusting frame 34 so as to rotate with the second gear 326.

[0058] Optionally, in order to reduce the friction between the second lead screw 321 and the adjusting frame 34 during rotation and improve the rotation smoothness of the second lead screw 321, a bearing or a sleeve is provided between the second lead screw 321 and the adjusting frame 34, thereby reducing the friction coefficient between the second lead screw 321 and the adjusting frame 34 and ensuring that the second lead screw 321 and the adjusting frame 34 can rotate smoothly relative to each other.

[0059] To sum up, since the moving block 324 is installed on the adjusting frame 34, the moving block 324 can move in the second direction together with the adjusting frame 34, and the moving block 324 itself can move in the first direction, thereby realizing the free movement of the dust collector head 35 on the horizontal plane, so that the dust collector head 35 in the cleaning component 3 can cover all areas within the same horizontal plane inside the server chassis 100, effectively improving the dust cleaning efficiency and reducing heat dissipation problems and other potential faults caused by dust accumulation.

[0060] Furthermore, the cleaning assembly 3 further includes a third motion assembly 33, which is disposed on the motion block 324 and includes a push rod 331 and a third driving member. The push rod 331 extends in the vertical direction, the upper end of the push rod 331 is connected to the motion block 324, and the lower end of the push rod 331 is connected to the dust collection head 35. The third driving member is connected to the push rod 331 to adjust the length of the push rod 331. Thus, when the third driving member is activated, the third driving member drives the push rod 331 to adjust the length along the axis of the push rod 331 itself. Since the upper end of the push rod 331 is connected to the motion block 324 and the dust collection head 35 is connected to the lower end of the push rod 331, when the length of the push rod 331 changes, the dust collection head 35 moves with the movement of the push rod 331, thereby achieving the movement of the dust collection head 35 in the vertical direction.

[0061] like Figure 3 As shown, the upper end of the push rod 331 is connected to the moving block 324, and the lower end of the push rod 331 is connected to the dust suction head 35. The length of the push rod 331 is adjustable. When the length of the push rod 331 becomes longer, the dust suction head 35 moves downward to absorb dust and impurities located in the lower part of the accommodating space 14. When the length of the push rod 331 becomes shorter, the dust suction head 35 moves upward to absorb dust and impurities located in the upper part of the accommodating space 14 or is retracted to a position where it will not collide with the server.

[0062] In short, the first moving component 31 enables the dust collector head 35 to move in the second direction, the second moving component 32 enables the dust collector head 35 to move in the first direction, and the third moving component 33 enables the dust collector head 35 to move in the up and down directions. Through the cooperation and coordination between the first moving component 31, the second moving component 32 and the third moving component 33, the dust collector head 35 can clean any area within the accommodating space 14.

[0063] To sum up, since the push rod 331 is connected between the dust collector head 35 and the moving block 324, and the moving block 324 is installed on the adjusting frame 34, the moving block 324 can move in the second direction together with the adjusting frame 34, and the moving block 324 itself can move in the first direction, thereby realizing the free movement of the dust collector head 35 in three-dimensional space, so that the dust collector head 35 in the cleaning component 3 can cover all areas inside the server chassis 100, effectively improving the dust cleaning efficiency and reducing heat dissipation problems and other potential faults caused by dust accumulation.

[0064] In any embodiment of the present application, the first lead screw 311 includes two, and the two first lead screws 311 are spaced apart in the first direction. The first driving member 312 is connected to one of the first lead screws 311, and the two first lead screws 311 are connected by a transmission belt 313. A protective box 15 is provided on the outside of the housing 1, and the first driving member 312 and the second driving member 322 are provided in the protective box 15. Therefore, when the first driving member 312 is started, it drives the first lead screw 311 connected thereto to rotate around the axis of the first lead screw 311 itself, and drives the other first lead screw 311 to rotate synchronously through the transmission of the transmission belt 313. The adjustment frame 34 is threadedly connected to the two first lead screws 311, so that the adjustment frame 34 can move smoothly in the second direction. In this way, the transmission connection between the two first lead screws 311 and the transmission belt 313 effectively improves the load-bearing capacity and operational stability of the first motion component 31.

[0065] like Figure 2 As shown, it can be understood that the first screw 311 includes two, the two first screws 311 are in the first direction (such as Figure 2 The two cams 312 are connected to each other by a first threaded connection 314, and the first threaded connection 314 is connected to the second threaded connection 314 by a second threaded connection 314. The two cams 312 are connected to each other by a first threaded connection 314, so as to realize the linkage of the two cams 312 and ensure that the two rotate synchronously to achieve stable guidance and movement. The second threaded connection 314 is connected to the second threaded connection 314, and the second threaded connection 314 is connected to the second threaded connection 314.

[0066] In any embodiment of the present application, a dust collection module 36 is provided on the motion block 324, and the dust collection head 35 is connected and communicated with the dust collection module 36 via a dust collection tube 37. It is understood that the dust collection tube 37 is a flexible tube that can adapt to bending requirements in different directions without being easily damaged. The dust collection module 36 is located on the motion block 324, and the dust collection head 35 is connected to the dust collection module 36 via the dust collection tube 37, so that the dust collection head 35 can clean dust and impurities from the storage space 14, thereby ensuring the cleanliness of the storage space 14.

[0067] In any embodiment of the present application, a limiting groove 3231 is formed on the active rod 323, extending along the second direction. A limiting rib 3261 is formed on the second gear 326, and the limiting rib 3261 is located within the limiting groove 3231 to limit the radial position of the second gear 326. Thus, by providing the limiting groove 3231 and the limiting rib 3261, the active rod 323 and the second gear 326 cooperate with each other through the limiting groove 3231 and the limiting rib 3261, thereby preventing the second gear 326 from radially deviating or shaking during operation, thereby ensuring smooth transmission of the adjustment frame 34.

[0068] like Figure 4 As shown, the limiting rib 3261 extends into the limiting groove 3231, so that the second gear 326 will not deviate or shake in the radial direction during the rotation process, and the limiting rib 3261 can extend along the extension direction of the limiting groove 3231 (such as Figure 3 The second gear 326 is guided by the stop rib 3261 so that the second gear 326 can accurately move in the second direction. Therefore, the cooperation between the stop rib 3261 and the stop groove 3231 not only prevents the second gear 326 from radially deviating, but also guides the second gear 326.

[0069] In any embodiment of the present application, the housing 1 has a mounting plate 11 and a bottom plate 12 spaced apart in the vertical direction, a mounting cavity 13 is defined between the mounting plate 11 and the bottom plate 12, and the temperature control assembly 2 includes: a liquid cooling unit 21 and an air cooling unit 22. Specifically, the liquid cooling unit 21 is disposed in the mounting cavity 13, and includes: a liquid cooling pipe 211, a cooling module 212, and a pump body 213. The liquid cooling pipe 211 has a liquid inlet end and a liquid outlet end. The temperature control flow channel is formed as a liquid cooling flow channel. The liquid cooling flow channel is formed in the liquid cooling pipe 211. The cooling module 212 is disposed on one of the liquid inlet end and the liquid outlet end. The pump body 213 is disposed on the other of the liquid inlet end and the liquid outlet end. The liquid cooling pipe 211 extends back and forth in a first direction along a second direction perpendicular to the first direction. The liquid inlet end and the liquid outlet end are connected by a connecting pipe 214. The connecting pipe 214 is connected to a liquid inlet pipe 215 for filling the liquid cooling pipe 211 with refrigerant. Air-cooling unit 22 is disposed within storage space 14 and includes a fan module 221 disposed on bottom plate 12. A temperature-controlled flow channel forms an air-cooling flow channel that communicates with both storage space 14 and the exterior of enclosure 1. Fan module 221 is used to drive the exchange of air within storage space 14 with air outside enclosure 1. Thus, by providing liquid-cooling unit 21 and air-cooling unit 22, a dual heat dissipation mode is formed, significantly improving heat dissipation capacity, enhancing heat exchange efficiency, and ensuring heat exchange effectiveness.

[0070] Reference Figure 6 As shown, the liquid cooling pipe 211 and the fan module 221 are arranged adjacent to each other in the vertical direction, and the liquid cooling pipe 211 is arranged in the first direction (such as Figure 7 The first direction shown) extends back and forth along the second direction, the liquid inlet end is used to introduce the refrigerant, and the liquid outlet end is used to discharge the refrigerant. The temperature control flow channel is formed as a liquid cooling flow channel, and the refrigerant flows in the liquid cooling flow channel. The cooling module 212 is arranged on one of the liquid inlet end and the liquid outlet end. The pump body 213 is connected to the cooling module 212 to drive the refrigerant to flow in the liquid cooling flow channel. The liquid cooling unit 21 can cool the mounting plate 11, thereby cooling the server unit or electronic components assembled on the mounting plate 11; and the fan module 221 introduces the gas outside the box body 1 into the mounting cavity 13 and cools it in the mounting cavity 13 through the liquid cooling pipe 211. The cooled gas enters the accommodating space 14 through the air-cooling flow channel, and cools the server unit or electronic components in the accommodating space 14, which not only plays a role in cooling but also plays a role in air circulation, effectively improving the heat dissipation effect and heat dissipation efficiency.

[0071] In any embodiment of the present application, a through opening is formed on the base plate 12, and the fan module 221 is arranged at the through opening. The fan module 221 includes: a fan 2211, a filter plate 2212 and a cleaning blade 2213. The filter plate 2212 covers the through opening. A plurality of filter holes 22121 are formed on the filter plate 2212. The installation cavity 13 is connected to the outside of the box body 1 through the plurality of filter holes 22121. The fan 2211 is rotatably connected relative to the filter plate 2212, and the cleaning blade 2213 is arranged on the side of the filter plate 2212 away from the fan 2211. The cleaning blade 2213 is rotatably connected relative to the filter plate 2212. Therefore, by setting the filter plate 2212 and the cleaning blade 2213, the fan module 221 has the air intake cleaning ability and self-cleaning ability, which not only effectively prevents dust from entering the box 1 and affecting the operation of electronic components, but also realizes the automatic cleaning function of the filter plate 2212 through the cleaning blade 2213, thereby ensuring the air intake volume and air intake speed.

[0072] Reference Figure 7 and Figure 8 As shown, the filter plate 2212 covers the position of the through-hole, and a plurality of filter holes 22121 are formed on the filter plate 2212. The filter holes 22121 penetrate the filter plate 2212 in the thickness direction of the filter plate 2212, so that the installation cavity 13 is connected with the outside of the box body 1. The cleaning blade 2213 is rotatably connected relative to the filter plate 2212, and the cleaning blade 2213 is in contact with the surface of the filter plate 2212. The cleaning blade 2213 can be set to rotate at fixed intervals to clean the dust and impurities on the filter plate 2212, thereby ensuring that the gas can enter the installation cavity 13 unimpeded.

[0073] In any embodiment of the present application, a mounting opening 111 is formed on the mounting plate 11, and the air-cooling unit 22 includes an air-dispersing duct 222. An air-cooling flow channel is formed in the air-dispersing duct 222, one end of which is located at the position of the mounting opening 111. The mounting cavity 13 is connected to the air-cooling flow channel through the mounting opening 111. A plurality of air outlets 2221 are formed on the sidewall of the air-dispersing duct 222, and the accommodating space 14 is connected to the air-cooling flow channel through the plurality of air outlets 2221. Thus, by providing the mounting opening 111 on the mounting plate 11, the heat dissipation duct is connected to the mounting cavity 13 through the mounting opening 111, thereby achieving directional air supply from the mounting cavity 13 to the accommodating space 14. At the same time, the plurality of air outlets 2221 are used to uniformly dissipate heat at multiple points, thereby improving the uniformity and efficiency of temperature control within the server chassis 100.

[0074] like Figure 6As shown, the mounting opening 111 is formed on one side of the mounting plate 11 and penetrates the mounting plate 11 in the thickness direction of the mounting plate 11. The heat dissipation pipe is a hollow structure. The air-cooling flow channel is located in the air dispersion pipe 222. The lower end of the air dispersion pipe 222 is located at the position of the mounting opening 111. The air dispersion pipe 222 extends in the up and down directions. A plurality of air outlets 2221 are formed on the side wall of the air dispersion pipe 222. Each air outlet 2221 is connected to the accommodating space 14 and the mounting cavity 13, that is, the accommodating space 14 and the mounting cavity 13 are connected through the air outlet 2221, so that the low-temperature gas in the mounting cavity 13 enters the accommodating space 14 to reduce the temperature in the accommodating space 14, and at the same time, the gas in the accommodating space 14 flows to ensure that the air temperature in the accommodating space 14 is maintained within a temperature range suitable for the operation of the server unit or the operation of the electronic components.

[0075] In any embodiment of the present application, Figure 1 As shown, the server chassis 100 further includes an exhaust assembly 4 disposed at the top of the chassis 1 to exchange air within the accommodating space 14 with air outside the chassis 1. It is understood that by disposing the exhaust assembly 4 at the top of the chassis 1, good ventilation and efficient heat dissipation within the chassis 1 are ensured, and the heated air within the accommodating space 14 can be effectively discharged to the external environment, forming a complete air flow path. The combined action of the exhaust assembly 4 and the fan module 221 increases the air flow velocity and air intake volume, thereby enhancing the heat dissipation effect.

[0076] The following will refer to Figures 1-8 A server chassis 100 according to a specific embodiment of the present application is described.

[0077] Reference Figures 1-8 As shown, the server chassis 100 includes: a chassis body 1, a temperature control component 2, a cleaning component 3 and an exhaust component 4.

[0078] Specifically, the housing 1 has a storage space 14, and the temperature control assembly 2 is disposed within the storage space 14. Universal wheels 17 are provided at the bottom of the housing 1. The server chassis 100 can be moved by pushing it, making it easier for operators to move the server chassis 100. Furthermore, retractable support legs 18 are provided at the bottom of the housing 1. When an operator wishes to move the server chassis 100 to a target location, the operator retracts the support legs 18, causing the server chassis 100 to move downward. The universal wheels 17 contact the ground, and the support legs 18 separate from the ground, making it easier for operators to move the server chassis 100. After the operator has moved the server chassis 100 to the target location, the operator extends the support legs 18 to lift the entire server chassis 100 off the ground, allowing it to be stably placed on the ground and preventing displacement. A transparent door panel 16 is provided on one side of the server chassis 100 to allow operators to observe the conditions within the storage space 14. The dust removal assembly's suction head 35 is located within the storage space 14 and is movable in the vertical, first, and second directions within the storage space 14, reaching any desired location. This allows for more comprehensive coverage of all areas and effective removal of dust from various locations within the storage space 14. The temperature control assembly 2 utilizes both air and liquid cooling. The air cooling system dissipates heat from the refrigerant and cools the air within the storage space 14, effectively absorbing heat generated during server operation and ensuring that the server interior remains within a suitable operating temperature range, preventing performance degradation or hardware damage caused by overheating.

[0079] The first lead screw 311 extends along the second direction, and both ends of the first lead screw 311 are rotatably connected to the box body 1 relative to the box body 1. The first driving member 312 is provided at one end of the first lead screw 311, and the first driving member 312 is used to drive the first lead screw 311 to rotate around its own axis. The adjusting frame 34 is threadedly connected to the first lead screw 311, and the adjusting frame 34 moves along the second direction as the first lead screw 311 rotates. The dust collector head 35 is connected to the adjusting frame 34, so the dust collector head 35 moves following the movement of the adjusting frame 34. The second lead screw 321 extends along the first direction, and both ends of the second lead screw 321 are rotatably connected to the adjusting frame 34 relative to the adjusting frame 34. The second driving member 322 is provided at one end of the second lead screw 321, and the second driving member 322 is used to drive the second lead screw 321 to rotate around its own axis. The moving block 324 is threadedly connected to the second lead screw 321, and the moving block 324 moves along the first direction as the second lead screw 321 rotates. The dust collector 35 is connected to the moving block 324, so the dust collector 35 moves following the movement of the moving block 324. The upper end of the push rod 331 is connected to the moving block 324, and the lower end of the push rod 331 is connected to the dust suction head 35. The length of the push rod 331 is adjustable. When the length of the push rod 331 becomes longer, the dust suction head 35 moves downward to absorb dust and impurities located in the lower part of the accommodating space 14. When the length of the push rod 331 becomes shorter, the dust suction head 35 moves upward to absorb dust and impurities located in the upper part of the accommodating space 14 or is retracted to a position where it will not collide with the server.

[0080] In short, the first moving component 31 enables the dust collector head 35 to move in the second direction, the second moving component 32 enables the dust collector head 35 to move in the first direction, and the third moving component 33 enables the dust collector head 35 to move in the up and down directions. Through the cooperation and coordination between the first moving component 31, the second moving component 32 and the third moving component 33, the dust collector head 35 can clean any area within the accommodating space 14.

[0081] When the cam 314 is in the unlocking state, the two first screws 311 are unlocked and the two first screws 311 are unlocked, so the cam 314 can be unlocked and the two first screws 311 can be unlocked. The dust suction head 35 is connected to the dust suction module 36 through a dust suction pipe 37 , and the dust suction pipe 37 is a hose.

[0082] The liquid cooling tube 211 and the fan module 221 are arranged adjacent to each other in the vertical direction. The liquid cooling tube 211 extends back and forth in the first direction and the second direction. A limit plate 216 is provided at the bend of the liquid cooling tube 211 to limit the position of the liquid cooling tube 211. The liquid inlet end is used to introduce the refrigerant, and the liquid outlet end is used to discharge the refrigerant. The temperature control flow channel is formed as a liquid cooling flow channel. Refrigerant flows in the liquid cooling flow channel. The cooling module 212 is provided on one of the liquid inlet end and the liquid outlet end. The pump body 213 is connected to the cooling module 212 to drive the refrigerant to flow in the liquid cooling flow channel. The liquid cooling unit 21 can cool the mounting plate 11, thereby cooling the server unit or electronic components mounted on the mounting plate 11; and, the fan module 221 introduces the gas outside the box 1 into the mounting cavity 13 and cools it down through the liquid cooling pipe 211 in the mounting cavity 13. The cooled gas enters the accommodating space 14 through the air-cooling flow channel, cooling the server unit or electronic components in the accommodating space 14, which not only plays a role in cooling but also plays a role in air circulation, effectively improving the heat dissipation effect and efficiency.

[0083] The filter plate 2212 covers the position of the through-hole, and a plurality of filter holes 22121 are formed on the filter plate 2212. The filter holes 22121 penetrate the filter plate 2212 in the thickness direction of the filter plate 2212, so that the installation cavity 13 is connected with the outside of the box body 1. The cleaning blade 2213 is rotatably connected relative to the filter plate 2212, and the cleaning blade 2213 is in contact with the surface of the filter plate 2212. The cleaning blade 2213 can be set to rotate at fixed intervals to clean the dust and impurities on the filter plate 2212, thereby ensuring that the gas can enter the installation cavity 13 unimpeded. Mounting opening 111 is formed on one side of mounting plate 11 and extends through the thickness of mounting plate 11. The heat dissipation pipe is hollow, and the cooling airflow path is located within the air duct 222. The lower end of air duct 222 is located at the location of mounting opening 111. Air duct 222 extends vertically, and multiple air outlets 2221 are formed on the sidewalls of air duct 222. Each air outlet 2221 communicates with the storage space 14 and the mounting cavity 13. Specifically, the air outlets 2221 connect the storage space 14 and the mounting cavity 13, allowing low-temperature air in the mounting cavity 13 to enter the storage space 14, reducing the temperature therein. This also allows air to circulate within the storage space 14, ensuring that the air temperature within the storage space 14 remains within a temperature range suitable for the operation of the server units or electronic components. An exhaust assembly 4 is provided at the top of the enclosure 1 to ensure good ventilation and efficient heat dissipation within the enclosure 1.

[0084] In addition, the server according to the embodiment of the present application includes the server chassis 100 of the above embodiment of the present application.

[0085] The server according to the embodiment of the present application has the same technical effect by setting up the server chassis 100 of the above embodiment of the present application, that is, by setting up a dust suction head 35 that can be movable in any direction in the accommodating space 14, the dust suction head 35 is not limited to the height adjustment of a single dimension, but can reach any position as needed, comprehensively cover all areas, and effectively remove dust from various positions in the accommodating space 14, thereby achieving all-round cleaning of the interior of the server chassis 100, improving the dust cleaning efficiency and cleaning effect in the server chassis 100, ensuring that even electronic components in complex layouts can be effectively cleaned, reducing heat dissipation problems and potential failures caused by dust accumulation, thereby ensuring the safety, stability and maintenance convenience of the server operation.

[0086] Although the embodiments of the present application have been shown and described, those skilled in the art will appreciate that various changes, modifications, substitutions, and variations may be made to the embodiments without departing from the principles and intent of the present application, and that the scope of the present application is defined by the claims and their equivalents.

Claims

1. A server chassis (100), characterized in that: include: A box body (1), wherein a receiving space (14) is formed in the box body (1); A temperature control component (2), the temperature control component (2) being arranged in the accommodating space (14), the temperature control component (2) having a temperature control flow channel, the temperature control flow channel being suitable for the flow of refrigerant and / or gas, and the temperature control component (2) being used to control the temperature in the accommodating space (14); A cleaning assembly (3) is provided on the box body (1), and the cleaning assembly (3) has a dust collection head (35). The dust collection head (35) is located in the accommodating space (14), and the dust collection head (35) can move in any direction in the accommodating space (14).

2. The server chassis (100) according to claim 1, characterized in that The cleaning component (3) comprises: Adjustment frame (34); A first motion component (31), the first motion component (31) is arranged in the accommodating space (14), the first motion component (31) comprises: a first screw (311) and a first driving member (312), the first screw (311) extends along the second direction, and both ends of the first screw (311) are rotatably arranged on the box body (1), the adjustment frame (34) is threadedly connected to the first screw (311), and the first driving member (312) is arranged on at least one end of the first screw (311) to drive the first screw (311) to rotate and drive the adjustment frame (34) to move in the second direction; The second motion assembly (32) includes: a second lead screw (321), a second driving member (322), an active rod (323), a driven gear set and a motion block (324), wherein the second lead screw (321) extends in a first direction, and one end of the second lead screw (321) is rotatably connected to the adjustment frame (34), and the other end of the second lead screw (321) is connected to the first gear (325) of the driven gear set, and the active rod (323) extends in a second direction. The second gear (326) of the driven gear set is sleeved on the active rod (323) and meshed with the first gear (325). Both ends of the active rod (323) are rotatably arranged on the box body (1). The motion block (324) is threadedly connected to the second lead screw (321). The second driving member (322) is arranged on at least one end of the active rod (323) to drive the active rod (323) to rotate and drive the motion block (324) to move in the first direction.

3. The server chassis (100) according to claim 2, characterized in that The cleaning assembly (3) further comprises: a third motion assembly (33), the third motion assembly (33) being arranged on the motion block (324), the third motion assembly (33) comprising: a push rod (331) and a third driving member, the push rod (331) extending in an up-down direction, the upper end of the push rod (331) being connected to the motion block (324), the lower end of the push rod (331) being connected to the dust collector head (35), and the third driving member being connected to the push rod (331) to adjust the length of the push rod (331).

4. The server chassis (100) according to claim 2, characterized in that The first lead screws (311) include two, and the two first lead screws (311) are spaced apart in a first direction. The first driving member (312) is connected to one of the first lead screws (311), and the two first lead screws (311) are connected by a transmission belt (313). A protective box (15) is provided on the outside of the box body (1), and the first driving member (312) and the second driving member (322) are provided in the protective box (15).

5. The server chassis (100) according to claim 3, characterized in that The moving block (324) is provided with a dust collection module (36), and the dust collection head (35) is connected and communicated with the dust collection module (36) via a dust collection pipe (37).

6. The server chassis (100) according to claim 2, characterized in that A limiting groove (3231) is formed on the active rod (323), and the limiting groove (3231) extends along the second direction. The second gear (326) is formed with a limiting rib (3261), and the limiting rib (3261) is located in the limiting groove (3231) to limit the position of the second gear (326) in the radial direction.

7. The server chassis (100) according to claim 1, characterized in that The box body (1) has a mounting plate (11) and a bottom plate (12) arranged at intervals in the vertical direction, a mounting cavity (13) is defined between the mounting plate (11) and the bottom plate (12), and the temperature control component (2) includes: A liquid cooling unit (21), the liquid cooling unit (21) is arranged in the installation cavity (13), the liquid cooling unit (21) comprises: a liquid cooling pipe (211), a cooling module (212) and a pump body (213), the liquid cooling pipe (211) has a liquid inlet end and a liquid outlet end, the temperature control flow channel is formed as a liquid cooling flow channel, the liquid cooling flow channel is formed in the liquid cooling pipe (211), the cooling module (212) is arranged on one of the liquid inlet end and the liquid outlet end, the pump body (213) is arranged on the other of the liquid inlet end and the liquid outlet end, the liquid cooling pipe (211) extends back and forth in a first direction along a second direction perpendicular to the first direction, and the liquid inlet end is connected to the liquid outlet end via a connecting pipe (214); An air cooling unit (22) is provided in the accommodating space (14), the air cooling unit (22) comprises a fan module (221), the fan module (221) is provided on the bottom plate (12), the temperature control flow channel is formed as an air cooling flow channel, the air cooling flow channel is connected to the accommodating space (14) and the outside of the box (1), and the fan module (221) is used to drive the gas in the accommodating space (14) to exchange with the gas outside the box (1).

8. The server chassis (100) according to claim 7, characterized in that: A through opening is formed on the bottom plate (12), and the fan module (221) is arranged at the through opening. The fan module (221) includes: a fan (2211), a filter plate (2212) and a cleaning blade (2213). The filter plate (2212) covers the through opening. A plurality of filter holes (22121) are formed on the filter plate (2212). The mounting cavity (13) is connected to the outside of the box (1) through the plurality of filter holes (22121). The fan (2211) is rotatably connected relative to the filter plate (2212), and the cleaning blade (2213) is arranged on a side of the filter plate (2212) away from the fan (2211). The cleaning blade (2213) is rotatably connected relative to the filter plate (2212).

9. The server chassis (100) according to claim 7, characterized in that: A mounting opening (111) is formed on the mounting plate (11); the air-cooling unit (22) includes an air-scattering pipe (222); the air-cooling flow channel is formed in the air-scattering pipe (222); one end of the air-scattering pipe (222) is arranged at the position of the mounting opening (111); the mounting cavity (13) is communicated with the air-cooling flow channel through the mounting opening (111); a plurality of air outlets (2221) are formed on the side wall of the air-scattering pipe (222); and the accommodating space (14) is communicated with the air-cooling flow channel through the plurality of air outlets (2221).

10. The server chassis (100) according to claim 1, characterized in that Also includes: An exhaust assembly (4) is provided on the top of the box (1) to allow the gas in the accommodating space (14) to be exchanged with the gas outside the box (1).

Citation Information

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