Cabinet structure and server system
By setting moisture-proof components and heat exchangers on the cooling airflow path, the poor effect caused by the separation of moisture-proof and heat dissipation is solved, and the efficient heat dissipation and moisture-proof of the cabinet are achieved, ensuring the reliability and service life of the internal components of the cabinet.
Patent Information
- Application Number
- CN202510682275.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-26
- Publication Date
- 2025-07-25
AI Technical Summary
In the prior art, moisture-proof and heat dissipation measures are designed separately, which leads to moisture-proof measures affecting the heat dissipation efficiency, and heat dissipation measures increase the risk of moisture invading the cabinet, and have poor results.
Moisture-proof components are arranged on the cooling airflow passage, including a filter and a drying chamber, which can prevent moisture by absorbing moisture from the airflow, and combine heat exchangers and exhaust passages to efficiently dissipate heat. The moisture-proof components can be detached and replaced to ensure the effect.
It realizes efficient heat dissipation and moisture-proofing of the cabinet in a high humidity environment, ensuring the reliability and service life of the cabinet's internal components.
Smart Images

Figure CN120379183A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of cabinets, and particularly to a cabinet structure and a server system. Background Art
[0002] With the rapid development of information technology, as the core device for data processing and storage, the performance and reliability requirements of servers are increasing day by day. During the normal operation of the server, heat is generated, which affects the performance of the device; if it operates in an environment with high humidity, the device will get damp, short-circuit or corrode, affecting the stability and service life of the server.
[0003] In related technologies, moisture-proof and heat-dissipation measures are respectively set in the server cabinet to ensure the reliable operation of the server under high-temperature and high-humidity conditions. However, since the moisture-proof and heat-dissipation are separately designed, during the actual application, the moisture-proof measures will affect the heat-dissipation efficiency, and the heat-dissipation measures will increase the risk of moisture intrusion into the cabinet, resulting in poor moisture-proof and heat-dissipation effects.
[0004] Therefore, how to provide a structure that can effectively prevent moisture and efficiently dissipate heat is an urgent problem to be solved by those skilled in the art at present. Summary of the Invention
[0005] This application provides a cabinet structure to at least solve the problem that in related technologies, the moisture-proof measures will affect the heat-dissipation efficiency, the heat-dissipation measures will increase the risk of moisture intrusion into the cabinet, and the moisture-proof and heat-dissipation effects are poor.
[0006] This application provides a cabinet structure, including:
[0007] A cabinet, provided with an installation chamber;
[0008] A heat exchange member, arranged in the installation chamber. The heat exchange member includes a heat exchange chamber, the heat exchange chamber can communicate with the installation chamber through an air outlet member, the heat exchange chamber can communicate with the atmosphere through an air inlet member, and the air outlet member and the installation chamber are communicated to form a cooling air flow path;
[0009] A moisture-proof component, arranged on the flow path of the cooling air flow path and / or at least part of the inner wall position of the cooling air flow path. The moisture-proof component is used to prevent moisture by absorbing moisture in the air flow.
[0010] On the other hand, the moisture-proof component includes a filter screen arranged on the flow path. At least one of the filter screen and the inner wall of the air outlet member can form a drying chamber, and a drying substance is arranged in the drying chamber.
[0011] On the other hand, the drying chamber arranged on the air outlet member has several layers of through holes, and the several layers of through holes are arranged along the direction of the flow path, and the through holes communicate with the inner cavity of the air outlet member.
[0012] On the other hand, several layers of through-holes include a first group of through-holes and a second group of through-holes. The first group of through-holes can be opened and closed to facilitate the replacement of the drying substance. The second group of through-holes communicates with the inner cavity of the air outlet member. The inner diameter of the first group of through-holes is larger than the outer diameter of the drying substance, and the inner diameter of the second group of through-holes is smaller than the outer diameter of the drying substance;
[0013] Alternatively, several layers of through-holes communicate with the inner cavity of the air outlet member. The drying chamber provided in the air outlet member is provided with a replacement port communicating with the several layers of through-holes, and the replacement port can be opened and closed to facilitate the replacement of the drying substance.
[0014] On the other hand, the moisture-proof component includes a moisture-proof coating provided on the inner wall of the cooling air flow path, and the moisture-proof coating is provided on at least one of the inner wall of the installation chamber, the inner wall of the air outlet member, and the inner wall of the exhaust duct at the end of the cooling air flow path.
[0015] On the other hand, the exhaust duct is located at the top position and / or the side position of the installation chamber, and the heat exchange member is located at the bottom position of the installation chamber. The air flow after heat exchange by the heat exchange member can flow through the installation chamber and be discharged through the exhaust duct;
[0016] The heat exchange chamber communicates with the air outlet member through a communication port. A rotatable assembly is provided in the air outlet member, and the rotatable assembly can rotate to block the communication port or open at least part of the communication port;
[0017] The rotatable assembly includes a push rod. One end of the push rod is rotatably connected to the inner wall of the air outlet member, and the other end of the push rod is rotatably connected to an adjustment plate. The push rod can drive the adjustment plate to rotate to block the communication port or open at least part of the communication port;
[0018] Several filters and several layers of through-holes are arranged in sequence along the direction of the flow path. The filters are supported by blocking strips connected to the inner wall of the air outlet member, and the blocking strips support the edges of the filters;
[0019] The communication port communicates with one end of the air outlet member close to the heat exchange chamber, and several sealing members are provided at the communication position between the communication port and the air outlet member;
[0020] Magnets magnetically connected to it are provided at some positions on the side of the filter away from the through-holes. A connecting rod is provided between the filter and the adjustment plate. When the adjustment plate rotates, it can drive the connecting rod and the magnet to generate an offset. When the deformation resilience of the filter is greater than the magnetic force of the magnet, the filter can rebound to shake off impurities;
[0021] A magnetic member is provided between the end of the connecting rod away from the adjustment plate and the magnet. The magnetic member is magnetically connected to the magnet. A damping rotating shaft is provided inside the end of the connecting rod away from the adjustment plate, and the direction of the damping rotating shaft is parallel to the direction of the rotating shaft corresponding to the rotation of the adjustment plate.
[0022] On the other hand, an exhaust assembly is provided at the end of the cooling air flow path. The exhaust assembly includes an exhaust duct. One end of the exhaust duct can communicate with the installation chamber, and a heat dissipation fan is provided at the other end of the exhaust duct. The heat dissipation fan can discharge the hot air after heat exchange in the installation chamber.
[0023] One end of the exhaust duct is connected to the heat dissipation fan through a fixing block. The fixing block is provided with a plugging slot and a transverse slot perpendicular to the plugging slot. The plugging slot communicates with the transverse slot. The plugging slot is used for plugging a circumferentially arranged connecting rod of the heat dissipation fan. An elastic member and a plurality of top blocks connected to the elastic member are provided in the transverse slot. A fitting portion is provided at one end of the top block close to the plugging slot. When the connecting rod is plugged into the plugging slot, the top block can compress the elastic member and the fitting portion can fit against the outer periphery of the connecting rod.
[0024] On the other hand, at least two spaced-apart placement frames are provided in the installation chamber. A liquid cooling pipeline is provided in the placement frame, and the liquid cooling pipelines corresponding to the at least two placement frames are connected in sequence.
[0025] A radiator is provided in the heat exchange chamber of the heat exchange member. A part of the liquid cooling pipeline close to the heat exchange member extends into the heat exchange chamber and can contact the radiator to cool the cooling medium.
[0026] On the other hand, the radiator includes a plurality of heat dissipation fins provided on its surface. A part of the position of the heat dissipation fins can be used to contact the liquid cooling pipeline, and other parts of the position of the heat dissipation fins can contact the air flow entering through the air inlet member.
[0027] The radiator includes a refrigeration chamber for fitting against one side of the heat dissipation fins away from the liquid cooling pipeline. An inlet and an outlet are provided on two opposite sides of the refrigeration chamber. A heat dissipation member is provided between the inlet and the outlet. The heat dissipation member can take out the heat generated by the heat dissipation fins through the outlet.
[0028] The present application also provides a server system, including the cabinet structure of any one of the above.
[0029] In the present application, the air flow entering through the air inlet member is cooled through the heat exchange chamber of the heat exchange member, and after cooling, it is sent into the installation chamber of the cabinet through the air outlet member, so as to dissipate heat from the installation chamber, and the reliable use performance and service life of the internal components of the installation chamber can be ensured; while the moisture-proof component is provided on the flow path of the cooling air flow path formed by the connection between the air outlet member and the installation chamber and / or at least part of the inner wall position of the cooling air flow path, so as to absorb the water vapor in the air flow to achieve the effect of dehumidification, reduce the water vapor in the air flow, and ensure the reliable and effective refrigeration effect of the air flow entering the installation chamber. Therefore, the technical problem of poor effect caused by the separation of moisture-proof and heat dissipation measures in the related art can be solved, and the technical effect of both effectively preventing moisture and efficiently dissipating heat can be achieved.
[0030] The beneficial effects of the present application are as follows: By providing a moisture-proof component on the flow path of the cooling air passage and / or on at least part of the inner wall of the cooling air passage, the moisture in the external atmospheric environment can be reduced from entering the cabinet, achieving both heat dissipation and moisture-proofing. That is, heat dissipation of the cabinet is realized while preventing moisture from entering, enabling the coexistence of heat dissipation and moisture-proofing. BRIEF DESCRIPTION OF THE DRAWINGS
[0031] To more clearly illustrate the embodiments of the present application, the accompanying drawings required for use in the embodiments will be briefly introduced below. Obviously, the accompanying drawings in the following description are only some embodiments of the present application. For those of ordinary skill in the art, other accompanying drawings can be obtained based on these drawings without creative efforts.
[0032] Figure 1 Schematic diagram of the cabinet structure provided by the embodiment of the present application;
[0033] Figure 2 For Figure 1 exploded view;
[0034] Figure 3 Half-sectional view of the air outlet component provided by the embodiment of the present application;
[0035] Figure 4 For Figure 3 partial enlarged view of area A in
[0036] Figure 5 Connection schematic diagram between the air outlet component and the heat exchange component provided by the embodiment of the present application;
[0037] Figure 6 Internal structure schematic diagram of the heat exchange component provided by the embodiment of the present application;
[0038] Figure 7 Structure schematic diagram of the exhaust component provided by the embodiment of the present application;
[0039] Figure 8 Structure schematic diagram of the exhaust component after flipping provided by the embodiment of the present application;
[0040] Figure 9 For Figure 8 partial enlarged view of area B in
[0041] Among them, the above-mentioned accompanying drawings include the following reference numerals:
[0042] 1 - Cabinet; 2 - Placing frame; 3 - Liquid cooling pipeline; 4 - Support rod; 5 - Heat exchange member; 6 - Liquid storage box; 7 - Air inlet member; 8 - Filter member; 9 - Pump; 10 - Top block; 11 - Radiator; 12 - Communication port; 13 - Sealing member; 14 - Air outlet member; 15 - Drying chamber; 16 - Grooved plate; 17 - Through hole; 18 - Drying substance; 19 - Blocking strip; 21 - Filter screen; 22 - Adjusting plate; 23 - Push rod; 24 - Magnet; 25 - Connecting rod; 26 - Damping rotating shaft; 27 - Magnetic member; 28 - Exhaust duct; 29 - Fixed block; 31 - Cooling fan; 32 - Connecting rod; 33 - Insertion slot; 34 - Horizontal slot; 35 - Elastic member;
[0043] 101 - Installation chamber; 501 - Heat exchange chamber; 141 - Inner cavity. Detailed implementation manner
[0044] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present application without creative efforts shall fall within the protection scope of the present application.
[0045] It should be noted that the orientation or positional relationship indicated by terms such as "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present application. The terms "installation", "connection", and "coupling" 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 directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two elements. The terms "parallel", "perpendicular", and "equal" include the described situations and situations similar to the described situations, and the range of the similar situations is within the acceptable deviation range, where the acceptable deviation range is determined by those of ordinary skill in the art considering the measurements being discussed and the errors associated with the measurements of specific quantities (i.e., the limitations of the measurement system). For example, "parallel" includes absolute parallel and approximate parallel, and the acceptable deviation range of approximate parallel can be, for example, within 5° deviation; "perpendicular" includes absolute perpendicular and approximate perpendicular, and the acceptable deviation range of approximate perpendicular can also be, for example, within 5° deviation. "Equal" includes absolute equality and approximate equality, and the acceptable deviation range of approximate equality can be, for example, that the difference between the two equal ones is less than or equal to 5% of any one of them. For those of ordinary skill in the art, the specific meanings of the above terms in the present application can be understood according to specific situations.
[0046] In order to enable those skilled in the art of the present technology to better understand the solution of the present application, the present application will be further described in detail below with reference to the drawings and specific embodiments.
[0047] An embodiment of the present application provides a cabinet structure, including a cabinet 1, a heat exchange member 5, and a moisture-proof component, which can meet the operation requirements of moisture-proof and heat dissipation. Please refer to Figure 1 、 Figure 2 。
[0048] Among them, the cabinet 1 is provided with an installation chamber 101, and the installation chamber 101 can be used to place electronic components or other devices / components that generate heat during operation. The corresponding cabinet 1 can be a server cabinet 1, a cabinet 1 of a cooling unit, or a cabinet 1 of an energy storage cabinet, and no specific limitation is made.
[0049] Please refer to Figure 2 、 Figure 6, the heat exchanger 5 is arranged in the installation chamber 101, and cold air is sent into the installation chamber 101 through the air outlet 14 of the heat exchanger 5, so as to achieve the technical effect of heat exchange for the installation chamber 101, that is, it can cool down the components placed in the installation chamber 101.
[0050] The heat exchanger 5 specifically includes a heat exchange chamber 501. The heat exchange chamber 501 is provided with an air outlet 14 and an air inlet 7. The air inlet 7 is the air inlet communicating with the atmosphere, and the air outlet 14 is the air inlet communicating with the installation chamber 101. The air flow entering the heat exchange chamber 501 through the air inlet 7 can be heated and then obtain a lower temperature air flow, and then introduced into the installation chamber 101, so as to cool down the components placed in the installation chamber 101.
[0051] In this embodiment, the specific heat exchange measures in the heat exchange chamber 501 can adopt forms such as air cooling and liquid cooling, as long as the air flow can be effectively cooled.
[0052] In this embodiment, the specific numbers of the air inlet 7 and the air outlet 14 are not limited too much, and can be designed according to the actual application scenario.
[0053] The air outlet 14 communicates with the installation chamber 101 to form a cooling air flow path. The cooling air flow path here is the flow path of the lower temperature air flow coming out of the air outlet 14. The specific shape of the cooling air flow path can be designed according to the actual situation without too much limitation.
[0054] The moisture-proof component is arranged on the flow path of the cooling air flow path and / or on at least part of the inner wall position of the cooling air flow path. The moisture-proof component is used to achieve moisture-proof by absorbing moisture in the air flow.
[0055] The moisture-proof component can achieve moisture-proof by absorbing moisture in the air flow, such as first-level moisture-proof, second-level moisture-proof or third-level moisture-proof, etc., which is specifically determined according to the moisture-proof requirements. For example, the third-level moisture-proof can gradually absorb the moisture in the air flow to obtain a relatively dry air flow, avoiding the formation of a high-humidity environment and affecting the normal use performance and service life of the components in the installation chamber 101.
[0056] In one implementation, the moisture-proof component is arranged on the flow path of the cooling air flow path. Specifically, it can be arranged at the position of the air outlet 14, or on the pipeline where the air outlet 14 communicates with the installation chamber 101, or at the position in the installation chamber 101 close to the air outlet 14. The above arrangement forms are only listed. This implementation mainly arranges the moisture-proof component on the flow path to absorb the moisture in the cold air flow and then use it to cool down the components in the installation chamber 101, avoiding the influence of the high-humidity environment on the normal working performance of the components and the influence on the service life caused by the corrosion of the components in the high-humidity environment.
[0057] In another implementation, the moisture-proof component is disposed at least at the inner wall position of the cooling air flow passage. The inner wall here can specifically be attached or coated with a moisture-absorbing material, which can absorb the water vapor when the air flows through it to obtain a relatively dry cooling air flow for cooling the components in the installation chamber 101, so as to avoid the influence of a high-humidity environment on the normal working performance of the components and the influence on the service life caused by corrosion of the components in a high-humidity environment.
[0058] The above two specific implementations can be implemented separately or combined to ensure sufficient moisture-proofing. Moisture-proof measures can also be set for the components in the installation chamber 101 itself to maximize the avoidance of the formation of a high-humidity environment, which affects the service life and operating performance of the components.
[0059] In this embodiment, the moisture-proof component can be specifically detachable relative to the cabinet 1, so that when the moisture-proof component reaches its service limit after long-term use or the moisture-proof effect is poor after long-term use, the moisture-proof component can be replaced according to the actual situation to ensure a reliable dehumidification effect on the air flow.
[0060] Specifically, to determine the disassembly conditions of the moisture-proof component, it can be determined according to the humidity detected at the relevant area position where the moisture-proof component is set in the cooling air flow passage. For example, if it is known through humidity detection that the ideal dehumidification effect is not achieved or dehumidification is not carried out, the moisture-proof component needs to be locally replaced or integrally replaced in a timely manner. Of course, in order to facilitate the operator to quickly obtain information, warning devices can be set, such as reminding the operator in the form of sound and light that there is an abnormality in the dehumidification in the cooling air flow passage and relevant operations need to be carried out in a timely manner.
[0061] In this embodiment, the air inlet member 7 can be regarded as an air inlet, and a filtering member 8 for filtering can also be provided at the position of the air inlet, which can block impurities in the atmosphere from entering the heat exchange chamber 501 of the heat exchange member 5 and the installation chamber 101 of the cabinet 1, achieving the effect of dust prevention and filtration.
[0062] In a specific implementation, as Figure 2 and Figure 6 shown, two air inlet members 7 can be provided on the opposite side surfaces of the installation chamber 101, and these two air inlet members 7 are arranged in a staggered manner, which can increase the air flow rate by increasing the air duct entering the heat exchange chamber 501 of the heat exchange member 5, ensuring the cooling and temperature reduction effect on the components in the installation chamber 101 and ensuring the service performance and service life of the components.
[0063] For the above specific implementation, the filtering devices at the positions of the two air inlet members 7 can be set to be the same or different. For example, if the filtering devices at these two places are both set as filter meshes 21, impurities can be removed before the air flow in the atmosphere enters the heat exchange member 5, ensuring the cleanliness of the air flow.
[0064] In this embodiment, due to the measure of arranging a moisture-proof component on the flow path of the cooling air flow path and / or on at least part of the inner wall of the cooling air flow path, the moisture in the external atmospheric environment can be reduced from entering the cabinet 1, achieving both heat dissipation and moisture-proofing. That is, both the heat dissipation of the cabinet 1 is realized and moisture can be prevented from entering, enabling the coexistence of heat dissipation and moisture-proofing.
[0065] Based on the above embodiment, please refer to Figure 3 、 Figure 4 , the moisture-proof component includes a filter screen 21 arranged on the flow path. At least one of the filter screen 21 and the inner wall of the air outlet member 14 can form a drying chamber 15, and a drying substance 18 is arranged in the drying chamber 15. The drying substance 18 can specifically be a chemical desiccant, activated carbon, silica gel, mineral desiccant, etc.
[0066] In this embodiment, the filter screen 21 is a component that can be used for moisture-proofing. Specifically, the filter screen 21 can be single or multiple.
[0067] For example, when the filter screen 21 is single, the single filter screen 21 can enclose to form a drying chamber 15. By placing a drying substance 18 in the drying chamber 15, the moisture in the air flow can be absorbed to achieve the effect of dehumidification. When the filter screen 21 is multiple, several drying chambers 15 can be formed by enclosing with multiple filter screens 21, so as to achieve sufficient dehumidification or multi-stage dehumidification through the drying substances 18 in the several drying chambers 15.
[0068] It should be noted that in addition to dehumidification, the above filter screen 21 can also have the effect of dust removal, capable of removing fine impurities and dust in the flowing air flow, and ensuring the cleanliness of the cold air flow entering the installation chamber 101.
[0069] In one implementation manner, the filter screen 21 can be an activated carbon filter screen structure or a composite structure of activated carbon and electrostatic fibers, and can specifically be set in a honeycomb shape, a wave shape or a corrugated shape to increase the contact area with the air flow to ensure the dehumidification effect.
[0070] In one implementation manner, the filter screen 21 can be a composite of silica gel and a particulate air filter layer, achieving dehumidification through silica gel and filtering effect by intercepting fine particles through the filter layer.
[0071] For the drying chamber 15 arranged in the air outlet member 14, holes and other structures can be opened on the inner wall to be able to place the drying substance 18, and the moisture in the air flow is absorbed by the drying substance 18 to achieve the effect of dehumidification and moisture-proofing. Here, the drying substance 18 can specifically be in the form of granular desiccant.
[0072] In this embodiment, at least one filter screen 21 and the inner wall of the air outlet member 14 can both form a drying chamber 15; or at least one filter screen 21 forms a drying chamber 15; or the inner wall of the air outlet member 14 forms a drying chamber 15. In any form, by setting the drying substance 18 in the drying chamber 15, it can absorb the moisture in the air flow passing through the cooling air flow path, so as to reduce the humidity of the air flow for cooling entering the installation chamber 101 and avoid affecting the normal operation and service life of the components in the installation chamber 101.
[0073] Based on any of the above embodiments, please refer to Figure 3 , the drying chamber 15 provided in the air outlet member 14 has several layers of through holes 17, and the several layers of through holes 17 are arranged along the direction of the flow path, and the through holes 17 communicate with the inner cavity 141 of the air outlet member 14.
[0074] As Figure 3 shown, the air outlet member 14 is a hollow part with a certain thickness inside, and can be a cylindrical structure, a square structure or a polygonal structure. By having a certain thickness, a drying chamber 15 communicating with its inner cavity 141 can be opened. The drying substance 18 in the drying chamber 15 contacts the air flow passing through the inner cavity 141 to achieve the effect of dehumidification, so as to reduce the humidity of the air flow entering the installation chamber 101, enabling the coexistence of heat dissipation and moisture-proof operations, that is, it can meet the heat dissipation requirements and prevent moisture from entering the cabinet 1.
[0075] By providing several layers of through holes 17 in the drying chamber 15 and arranging the several layers of through holes 17 along the direction of the cooling air flow path, the air flow can be gradually absorbed by moisture at multiple positions, and the humidity of the air flow introduced into the installation chamber 101 can be reduced as much as possible, so as to prevent moisture from entering while meeting the heat dissipation requirements.
[0076] By connecting the through holes 17 to the air outlet member 14, the through holes 17 can be distributed throughout the installation chamber 101 to increase the contact area between the drying substance 18 and the air flow in the installation chamber 101. Specifically, the through holes 17 can be set as polygonal through holes or circular through holes, etc., without limitation.
[0077] The size of the through holes 17 can be set according to the actual situation, specifically designed in combination with the actual needs of preventing the drying substance 18 from falling out of the through holes 17 and facilitating the disassembly and assembly of the subsequent drying substance 18.
[0078] In this embodiment, the position of the several layers of through holes 17 on the inner wall of the air outlet member 14 is not limited. For example, it can be located in the middle, at the top, at the bottom or in all areas of the inner wall. There can also be some through holes 17 provided on the outer wall of the air outlet member 14, which can be flexibly designed according to the actual situation.
[0079] Based on any of the above embodiments, for the drying substance 18 arranged in the drying chamber 15 of the air outlet member 14, since the dehumidification effect is achieved by adsorbing the water vapor in the air flow, the dehumidification effect may be poor after long-term use, and it needs to be replaced in time.
[0080] In one embodiment, several layers of through holes 17 include a first group of through holes 17 and a second group of through holes 17. The first group of through holes 17 can be opened and closed to facilitate the replacement of the drying substance 18. The second group of through holes 17 communicates with the inner cavity 141 of the air outlet member 14. The inner diameter of the first group of through holes 17 is larger than the outer diameter of the drying substance 18, and the inner diameter of the second group of through holes 17 is smaller than the outer diameter of the drying substance 18. That is, in normal dehumidification operations, the first group of through holes 17 is closed, and only when the drying substance 18 in the drying chamber 15 needs to be replaced, the first group of through holes 17 is opened; while the second group of through holes 17 is used to communicate with the inner cavity 141 of the air outlet member 14 to achieve the effect of absorbing the water vapor in the flowing air flow, achieve the dehumidification effect, avoid the situation of moisture entering the cabinet 1, and ensure the reliable use performance and service life of the components inside the cabinet 1.
[0081] Among them, the inner diameter of the first group of through holes 17 is set larger than the outer diameter of the drying substance 18. For example, if the drying substance 18 is a spherical desiccant, such a setting can make the drying substance 18 be taken out from the drying chamber 15 for easy replacement. Regarding the openable and closable setting of the first group of through holes 17, the first group of through holes 17 can be closed or opened by a cover plate or other shaped plugging members. Specifically, the plugging member is detachably connected to the first group of through holes 17, and the detachable connection can be achieved by fasteners, or by connection methods such as magnetic connection or snap connection.
[0082] Regarding the number of the first group of through holes 17 and the number of the second group of through holes 17, it can be designed according to the actual situation, as long as the dehumidification effect of the air flow is ensured and the replacement of the drying substance 18 is facilitated.
[0083] In this embodiment, the opening directions of the first group of through holes 17 and the second group of through holes 17 can both face the inner cavity 141 of the air outlet member 14; or the opening of the first group of through holes 17 can face away from the inner cavity 141 of the air outlet member 14, while the opening direction of the second group of through holes 17 faces the inner cavity 141 of the air outlet member 14, so as to prevent the air flow from blowing off the plugging member and avoid affecting the dehumidification process of the air flow.
[0084] In a specific embodiment, the second group of through holes 17 is opened on the inner wall of the air outlet member 14, which can ensure that the second group of through holes 17 can fully contact the air flow to ensure the dehumidification effect; while the first group of through holes 17 is arranged on the outer periphery of the air outlet member 14, which is convenient for the replacement of the drying substance 18.
[0085] In another specific embodiment, several layers of through holes 17 are connected to the inner cavity 141 of the air outlet member 14, and the drying chamber 15 provided in the air outlet member 14 is provided with a replacement port connected to the several layers of through holes 17, and the replacement port can be opened and closed to facilitate the replacement of the drying material 18.
[0086] In this embodiment, the drying chamber 15 provided in the air outlet member 14 is provided with a replacement port connected by several layers of through holes 17. The several layers of through holes 17 here are all used to connect to the inner cavity 141 of the air outlet member 14. The connection between the replacement port and the through holes 17 is achieved through the cavity of the drying chamber 15. The specific size of the replacement port here is not limited. Similarly, the opening and closing setting of the replacement port can be assisted by a blocking member, such as a magnetic slot plate 16. The slot plate 16 can be adsorbed at the position of the replacement port. When the drying material 18 needs to be replaced, the slot plate 16 can be removed manually by force, which is easy to operate and has a simple and effective structure.
[0087] Based on any of the above embodiments, the moisture-proof component includes a moisture-proof coating arranged on the inner wall of the cooling air flow passage, and the moisture-proof coating is arranged on at least one of the inner wall of the installation chamber 101, the inner wall of the air outlet piece 14, and the inner wall of the exhaust duct 28 at the end of the cooling air flow passage.
[0088] By providing a moisture-proof coating, it is also possible to prevent moisture from being concentrated in the cabinet 1 and to avoid affecting the performance and service life of the components in the installation chamber 101 .
[0089] In this embodiment, the moisture-proof coating can cooperate with the setting of the drying material 18 in the drying chamber 15 to further ensure the dehumidification effect and prevent moisture from affecting the components in the installation chamber 101 of the cabinet 1. The specific material of the moisture-proof coating can be flexibly selected based on actual conditions as long as it can achieve an effective moisture-proof effect.
[0090] In this embodiment, whether it is the inner wall of the installation chamber 101, the inner wall of the air outlet piece 14, or the inner wall of the exhaust duct 28 at the end of the cooling airflow passage, a moisture-proof coating can be processed by spraying several times. After a certain period of use, it can be sprayed again to ensure the effectiveness of the moisture-proof coating.
[0091] In this embodiment, if the cabinet 1 is provided with a door structure, the installation chamber 101 includes the inner wall of the door structure, and therefore a moisture-proof coating also needs to be sprayed.
[0092] Based on any of the above embodiments, the exhaust duct 28 is located at the top position and / or the side position of the installation chamber 101, and the heat exchange member 5 is located at the bottom position of the installation chamber 101. The cold air after heat exchange by the heat exchange member 5 can flow through the installation chamber 101 and be discharged through the exhaust duct 28. Through this setting form, the air flow in the atmosphere can be cooled from the bottom of the cabinet 1 and sent upward, so as to cooperate with the direction of the hot air flow in the installation chamber 101 of the cabinet 1 to promote the heat dissipation process, and further discharge the hot air out of the machine through the exhaust duct 28 to improve the heat dissipation efficiency. This layout form can improve the heat dissipation efficiency by improving the flow path of the cooling air flow, and can effectively prevent moisture while ensuring efficient heat dissipation.
[0093] In this embodiment, the exhaust duct 28 is actually in the form of a pipeline, which can take out the hot air flow after heat exchange in the installation chamber 101 out of the cabinet 1 through an auxiliary component. The specific auxiliary component can be a fan with suction.
[0094] It should be noted that the top, side, and bottom in this embodiment are all introduced in terms of the orientation in Figure 1 the figure.
[0095] Please refer to Figure 2 and Figure 3 . The heat exchange chamber 501 is communicated with the inner cavity 141 of the air outlet member 14 through the communication port 12. A rotatable assembly is provided in the air outlet member 14, and the rotatable assembly can rotate to block the communication port 12 or open at least part of the communication port 12. Since the temperature in the installation chamber 101 is different, in order to avoid increasing energy consumption, a rotatable assembly is provided to meet the need to adjust the amount of cold air flowing into the installation chamber 101 according to the actual temperature situation, so as to achieve accurate heat dissipation. Specifically, the larger the opened part of the communication port 12, the larger the amount of cold air flowing into the installation chamber 101, and vice versa.
[0096] Specifically, a temperature sensor and a humidity sensor can be installed inside the cabinet 1, and a display screen is provided on the side of the cabinet 1 for monitoring and displaying the temperature and humidity inside the cabinet 1. In an actual application scenario, the operation of the rotatable assembly can be controlled according to the temperature sensor to adjust the size of the communication port 12; while the humidity sensor can reflect the humidity situation / dehumidification operation situation inside the cabinet 1, which is convenient for the operator to know the progress of the operation.
[0097] In a specific embodiment, please refer to Figure 3 . The rotatable assembly includes a push rod 23. One end of the push rod 23 is rotatably connected to the inner wall of the air outlet member 14, and the other end of the push rod 23 is rotatably connected to an adjusting plate 22. The push rod 23 can drive the adjusting plate 22 to rotate to block the communication port 12 or open at least part of the communication port 12.
[0098] The push rod 23 can specifically be in the form of electric / pneumatic / hydraulic drive, capable of providing the acting force to drive the adjustment plate 22 to rotate, enabling the adjustment plate 22 to block the communication port 12, fully open the communication port 12, or open a part of the communication port 12, so as to adaptively adjust the air flow entering the installation chamber 101 according to the actual temperature condition inside the cabinet 1.
[0099] In this embodiment, the form of the two ends of the push rod 23 being rotatably connected is hinge connection. Specifically, the moving stroke of the push rod 23 is related to the temperature condition inside the installation chamber 101.
[0100] It should be noted that the adjustment plate 22 needs to rotate, that is, it requires a certain rotation stroke, and the air outlet member 14 also needs to be in communication with the communication port 12. Therefore, the adjustment plate 22 can be extended into the heat exchange chamber 501, and the height of the heat exchange chamber 501 provides space for the rotation of the adjustment plate 22, and can also not affect the air flow effect, preventing the air flow from entering the installation chamber 101 without passing through the moisture-proof component inside the air outlet member 14.
[0101] In a specific embodiment, several filters 21 and several layers of through holes 17 are arranged in sequence along the direction of the flow path, that is, first filter and dehumidify once, and then dehumidify for the second time. The filter 21 is supported by the blocking strips 19 connected to the inner wall of the air outlet member 14, and the blocking strips 19 support the edge of the filter 21. The blocking strips 19 can specifically achieve the support effect, which is convenient for the installation and disassembly of the filter 21 relative to the inner cavity of the air outlet member 14.
[0102] By the blocking strips 19 supporting the edge of the filter 21, it can ensure the full contact between the filter 21 and the air flow, so as to ensure the effects of filtration and primary dehumidification, and ensure the effects of heat dissipation and moisture protection.
[0103] Among them, please refer to Figure 5 , the communication port 12 is in communication with one end of the air outlet member 14 close to the heat exchange chamber 501, and several seals 13 are provided at the communication position between the communication port 12 and the air outlet member 14. Specifically, one end of the air outlet member 14 close to the heat exchange chamber 501 can be inserted into the communication port 12, which can ensure the rotation effect of the adjustment plate 22 and the air flow direction in this way.
[0104] By arranging the seals 13 at the communication position between the communication port 12 and the air outlet member 14, it can prevent the air flow from directly escaping into the installation chamber 101, ensuring that the air flow passes through the filtration and dehumidification of the air outlet member 14 before entering the installation chamber 101.
[0105] Please refer to Figure 3 、 Figure 4, a magnet 24 magnetically connected thereto is provided at a partial position on the side of the filter screen 21 away from the through hole 17. A connecting rod 25 is provided between the filter screen 21 and the adjusting plate 22. When the adjusting plate 22 rotates, it can drive the connecting rod 25 and the magnet 24 to generate an offset, so that the filter screen 21 can be deformed to shake off impurities. Under the pushing action of the push rod 23, the adjusting plate 22 can rotate, and the connecting rod 25 can also deflect to drive the magnet 24 and the filter screen 21 to move. Since the edge of the filter screen 21 is supported on the blocking strip 19, therefore, by pulling the magnet 24 and the filter screen 21, the filter screen 21 can be softly deformed. When the force of the filter screen 21 deforming and rebounding is greater than the magnetic force of the magnet 24 after being pulled to a certain extent, the filter screen 21 will rebound and recover. The magnetic force here can also be regarded as the suction force of the magnet 24 on the filter screen 21. The effect of shaking off impurities is achieved through the rebound of the filter screen 21, avoiding the situation of blocking the filter screen 21.
[0106] In one embodiment, please refer to Figure 3 , Figure 4 , a magnetic member 27 is provided between the end of the connecting rod 25 away from the adjusting plate 22 and the magnet 24. The magnetic member 27 is magnetically connected to the magnet 24. A damping rotating shaft 26 is provided inside the end of the connecting rod 25 away from the adjusting plate 22. The direction of the damping rotating shaft 26 is parallel to the direction of the rotating shaft corresponding to the rotation of the adjusting plate 22. The magnetic member 27 can specifically be an iron sheet or an alloy member and can be adsorbed by the magnet 24.
[0107] The direction of the damping rotating shaft 26 is parallel to the direction of the rotating shaft corresponding to the rotation of the adjusting plate 22. Through the setting of the damping rotating shaft 26, it can cooperate with the action of the push rod 23 to enable the adjusting plate 22 to be maintained at a certain position, avoiding the influence of unpowered flipping on the moisture-proof and heat dissipation processes of the cabinet 1.
[0108] On the basis of any of the above embodiments, please refer to Figure 1 , Figure 7 , Figure 8 , an exhaust assembly is provided at the end of the cooling air flow passage. The exhaust assembly includes an exhaust duct 28. One end of the exhaust duct 28 can communicate with the installation chamber 101, and a heat dissipation fan 31 is provided at the other end of the exhaust duct 28. The heat dissipation fan 31 can discharge the hot air after heat exchange in the installation chamber 101. Through the heat dissipation fan 31, the hot air in the installation chamber 101 can be taken out, so that the temperature in the installation chamber 101 meets the conditions for the normal operation of the components, ensuring the service life and reliable operation performance of the components.
[0109] It should be noted that the exhaust duct 28 can partially extend into the installation chamber 101 to be able to take out the internal hot air flow. In this case, the sealing operation between the exhaust duct 28 and the installation chamber 101 needs to be done well to ensure the reliability of the hot air discharge.
[0110] On the basis of any of the above embodiments, please refer toFigure 7 , Figure 8 , Figure 9 , one end of the exhaust passage 28 is connected to the cooling fan 31 through the fixing block 29. The fixing block 29 is provided with a plugging groove 33 and a transverse groove 34 perpendicular to the plugging groove 33. The plugging groove 33 communicates with the transverse groove 34. The plugging groove 33 is used for plugging the circumferentially arranged connecting rod 32 of the cooling fan 31. An elastic member 35 and a plurality of top blocks 10 connected to the elastic member 35 are arranged in the transverse groove 34. A fitting portion is provided at one end of the top block 10 close to the plugging groove 33. When the connecting rod 32 is plugged into the plugging groove 33, the top block 10 can compress the elastic member 35 and the fitting portion can fit against the outer periphery of the connecting rod 32. This corresponds to the installation scenario of the cooling fan 31; when the connecting rod 32 is pulled out of the plugging groove 33, the elastic member 35 and the top block 10 are reset. This corresponds to the disassembly scenario of the cooling fan 31.
[0111] In one implementation, two top blocks 10 are provided, and an elastic member 35 is arranged between the two top blocks 10. When the connecting rod 32 is inserted into the plugging groove 33, the top block 10 close to the plugging groove 33 contacts the outer periphery of the connecting rod 32 and is pressed to compress the elastic member 35, while the top block 10 far from the plugging groove 33 is arranged to fit against or be fixed to the inner wall of the transverse groove 34, which can ensure good directionality when the elastic member 35 moves and ensure the reliable installation and disassembly of the cooling fan 31 relative to the plugging groove 33.
[0112] In another implementation, one top block 10 is provided. One end of the elastic member 35 is connected to the inner wall of the transverse groove 34, and the other end is connected to the top block 10. In this case, the reliable abutment of the elastic member 35 against the connecting rod 32 during the installation of the cooling fan 31 and the simple operation during the disassembly and assembly of the cooling fan 31 can still be ensured through the setting of the elastic member 35.
[0113] Based on any of the above embodiments, please refer to Figure 1 , at least two spaced-apart placement frames 2 are arranged in the installation chamber 101. A liquid cooling pipeline 3 is arranged in the placement frame 2, and the liquid cooling pipelines 3 corresponding to at least two placement frames 2 are sequentially communicated. The circulation of the cooling medium in the liquid cooling pipeline 3 meets the liquid cooling and heat dissipation requirements in the installation chamber 101. Specifically, the cooling medium can be water, refrigerant, other cooling liquids, etc., without limitation.
[0114] For the type of the liquid cooling pipeline 3, it can be set as a serpentine pipeline with a curved shape, or an S-shaped pipeline, or other curved shapes, without excessive limitation.
[0115] A radiator 11 is arranged in the heat exchange chamber 501 of the heat exchange member 5. A part of the liquid cooling pipeline 3 close to the heat exchange member 5 extends into the heat exchange chamber 501 and can contact the radiator 11 to cool the cooling medium. Through the setting of the radiator 11, the coldness of the coolant can be ensured and the circulation of the liquid cooling pipeline 3 can be realized.
[0116] For the circulation of the liquid cooling pipeline 3, a pump 9 and a liquid storage box 6 are also provided in the installation chamber 101. The specific circulation process is as follows:
[0117] Place the component on the placement frame 2. The placement frame 2 is provided with support rods 4 capable of supporting the component. When the temperature sensor in the cabinet 1 detects that the inside of the cabinet 1 generates high temperature, the pump 9 is controlled to start, extracting the coolant inside the liquid storage box 6, and then under the action of the pump 9, the coolant is sent into the liquid cooling pipeline 3. Since the bending of the liquid cooling pipeline 3 can achieve a longer pipeline length within the limited space of the placement frame 2, the bending design of the liquid cooling pipeline 3 significantly increases the contact area between itself and the hot air in the cabinet 1, improves the heat exchange efficiency, enables the coolant to more effectively absorb the heat of the air. At the same time, the bent structure of the liquid cooling pipeline 3 will cause the coolant to generate turbulence during the flow process, and the turbulence can destroy the boundary layer on the inner wall of the pipeline, further ensuring the heat absorption and cooling effect.
[0118] During the flow of the coolant in the liquid cooling pipeline 3, due to the high heat capacity of the coolant, it can effectively absorb a large amount of heat inside the equipment, achieving the cooling of the inside of the equipment. After the coolant absorbs heat and heats up, the pump 9 then pumps back the heated coolant and reversely flows it to the position of the radiator 11. Then the radiator cools and cools the heated coolant. After that, the cooled coolant flows back to the liquid storage box 6, and is then transported to the liquid cooling pipeline 3 by the pump 9 to complete the purpose of circulating liquid cooling.
[0119] Through the above-mentioned coolant circulation refrigeration, combined with the cold air flow sent into the installation chamber 101 by the air outlet member 14, the effective heat dissipation of the installation chamber 101 can be fully ensured, and the reliable use performance and service life of the internal components can be guaranteed.
[0120] Based on any of the above embodiments, please refer to Figure 6 , the radiator 11 includes a plurality of heat dissipation fins provided on its surface. A part of the heat dissipation fins can be used to contact the liquid cooling pipeline 3, and other parts of the heat dissipation fins can contact the air flow entering through the air inlet member 7.
[0121] As Figure 6 shown, the part of the liquid cooling pipeline 3 that returns passes through the edge of the radiator 11 and can contact the heat dissipation fins to cool the coolant in the liquid cooling pipeline 3 so that it can continue to participate in the circulation; and part of the heat dissipation fins can also contact the air flow entering through the air inlet member 7 to cool the air flow and then send it into the installation chamber 101 to ensure the coldness of the air flow sent into the installation chamber 101. Through the setting of the radiator, the reliable effectiveness of the air cooling and liquid cooling methods in the installation chamber 101 can be ensured, and the efficient heat dissipation of the cabinet 1 can be guaranteed.
[0122] The cooling chamber of the radiator 11 is provided with an inlet and an outlet on two opposite sides. A heat dissipation component is arranged between the inlet and the outlet, and the heat dissipation component can take out the heat generated by the heat dissipation fins through the outlet. Specifically, the setting of the heat dissipation component can ensure the coldness of the heat dissipation fins. Specifically, after the heat exchange between the heat dissipation fins and the liquid cooling pipeline 3 and the air flow of the air inlet component 7, the temperature rises. At this time, it is necessary to cool the heat dissipation fins. The specific cooling measure can be in the form of air cooling. For example, one side of the heat dissipation fins is in contact with the liquid cooling pipeline 3, and the other side is in contact with the cooling chamber. The inlet and the outlet are arranged on two opposite sides of the cooling chamber, and a fan is arranged inside the cooling chamber, that is, the heat generated when the heat dissipation fins contact the cooling chamber can be discharged by blowing the fan. It should be noted that the inlet and the outlet here are not connected to the installation chamber 101, but are connected to the atmosphere to avoid affecting the process of cold air entering the installation chamber 101.
[0123] In addition to the above cabinet structure, the present application also provides a server system including the cabinet structure described in any one of the above embodiments. The server system may include a plurality of servers placed in the installation chamber 101, and the reliable operation effect of the servers can be ensured through the moisture-proof and heat-dissipation design of the cabinet structure, and the service life of the servers can be ensured.
[0124] The above has introduced in detail a cabinet structure and a server system provided by the present application. Specific examples are used in this article to elaborate on the principle and implementation manner of the present application. The description of the above embodiments is only used to help understand the method and its core idea of the present application. It should be pointed out that for those of ordinary skill in the art in this technical field, without departing from the principle of the present application, several improvements and modifications can be made to the present application, and these improvements and modifications also fall within the protection scope of the claims of the present application.
Claims
1. A cabinet structure, characterized in that, Comprising: A cabinet (1) provided with an installation chamber (101); A heat exchange member (5) disposed in the installation chamber (101), the heat exchange member (5) including a heat exchange chamber (501), the heat exchange chamber (501) being capable of communicating with the installation chamber (101) through an air outlet member (14), the heat exchange chamber (501) being capable of communicating with the atmosphere through an air inlet member (7), and the air outlet member (14) and the installation chamber (101) being communicated to form a cooling air flow path; A moisture-proof component disposed on the flow path of the cooling air flow path and / or at least a part of the inner wall position of the cooling air flow path, the moisture-proof component being used for moisture-proof by absorbing moisture in the air flow.
2. The cabinet structure according to claim 1, characterized in that The moisture-proof component includes a filter screen (21) disposed on the flow path, and at least one of the filter screen (21) and the inner wall of the air outlet member (14) can form a drying chamber (15), and a drying substance (18) is disposed in the drying chamber (15).
3. The cabinet structure according to claim 2, characterized in that, The drying chamber (15) provided in the air outlet member (14) has several layers of through holes (17), and the several layers of through holes (17) are arranged along the direction of the flow path, and the through holes (17) communicate with the inner cavity (141) of the air outlet member (14).
4. The cabinet structure according to claim 3, characterized in that, The several layers of through holes (17) include a first group of through holes (17) and a second group of through holes (17), the first group of through holes (17) are provided to be openable and closable to facilitate the replacement of the drying substance (18), the second group of through holes (17) communicate with the inner cavity (141) of the air outlet member (14), the inner diameter of the first group of through holes (17) is larger than the outer diameter of the drying substance (18), and the inner diameter of the second group of through holes (17) is smaller than the outer diameter of the drying substance (18); Or, the several layers of through holes (17) communicate with the inner cavity (141) of the air outlet member (14), and the drying chamber (15) provided in the air outlet member (14) is provided with a replacement port communicating with the several layers of through holes (17), and the replacement port is provided to be openable and closable to facilitate the replacement of the drying substance (18).
5. The cabinet structure according to claim 4, characterized in that, The moisture-proof component includes a moisture-proof coating disposed on the inner wall of the cooling air flow path, and the moisture-proof coating is disposed on at least one of the inner wall of the installation chamber (101), the inner wall of the air outlet member (14), and the inner wall of the exhaust duct (28) at the end of the cooling air flow path.
6. The cabinet structure according to claim 5, characterized in that, The exhaust duct (28) is located at the top position and / or the side position of the installation chamber (101), the heat exchange member (5) is located at the bottom position of the installation chamber (101), and the air flow after heat exchange by the heat exchange member (5) can flow through the installation chamber (101) and be discharged through the exhaust duct (28); The heat exchange chamber (501) communicates with the air outlet member (14) through a communication port (12), and a rotatable component is disposed in the air outlet member (14), and the rotatable component can rotate to block the communication port (12) or open at least a part of the communication port (12); The rotatable component includes a push rod (23). One end of the push rod (23) is rotatably connected to the inner wall of the air outlet member (14), and the other end of the push rod (23) is rotatably connected to an adjusting plate (22). The push rod (23) can drive the adjusting plate (22) to rotate to block the communication port (12) or open at least part of the communication port (12). A plurality of the filter screens (21) and a plurality of layers of the through holes (17) are sequentially arranged along the direction of the flow path. The filter screens (21) are supported by blocking strips (19) connected to the inner wall of the air outlet member (14), and the blocking strips (19) support the edges of the filter screens (21). The communication port (12) communicates with one end of the air outlet member (14) close to the heat exchange chamber (501), and a plurality of sealing members (13) are provided at the communication position between the communication port (12) and the air outlet member (14). Magnets (24) magnetically connected to the filter screen (21) are provided at some positions on the side of the filter screen (21) away from the through holes (17). A connecting rod (25) is provided between the filter screen (21) and the adjusting plate (22). When the adjusting plate (22) rotates, it can drive the connecting rod (25) and the magnet (24) to shift. When the deformation resilience of the filter screen (21) is greater than the magnetic force of the magnet (24), the filter screen (21) can rebound to shake off impurities. A magnetic member (27) is provided between the end of the connecting rod (25) away from the adjusting plate (22) and the magnet (24). The magnetic member (27) is magnetically connected to the magnet (24). A damping rotating shaft (26) is provided inside the end of the connecting rod (25) away from the adjusting plate (22), and the direction of the damping rotating shaft (26) is parallel to the direction of the rotating shaft corresponding to the rotation of the adjusting plate (22).
7. The cabinet structure according to any one of claims 1 to 6, characterized in that An exhaust assembly is provided at the end of the cooling air flow path. The exhaust assembly includes an exhaust duct (28). One end of the exhaust duct (28) can communicate with the installation chamber (101), and a heat dissipation fan (31) is provided at the other end of the exhaust duct (28). The heat dissipation fan (31) can discharge the hot air after heat exchange in the installation chamber (101). One end of the exhaust duct (28) is connected to the heat dissipation fan (31) through a fixing block (29). The fixing block (29) is provided with a plugging groove (33) and a transverse groove (34) perpendicular to the plugging groove (33). The plugging groove (33) communicates with the transverse groove (34). The plugging groove (33) is used for plugging a circumferentially arranged connecting rod (32) of the heat dissipation fan (31). An elastic member (35) and a plurality of top blocks (10) connected to the elastic member (35) are provided in the transverse groove (34). A fitting portion is provided at one end of the top block (10) close to the plugging groove (33). When the connecting rod (32) is plugged into the plugging groove (33), the top block (10) can compress the elastic member (35) and the fitting portion can fit on the outer circumference of the connecting rod (32).
8. The cabinet structure according to claim 7, characterized in that, At least two spaced-apart placement frames (2) are provided in the installation chamber (101), a liquid cooling pipeline (3) is provided in the placement frame (2), and the liquid cooling pipelines (3) corresponding to at least two of the placement frames (2) are sequentially communicated; A radiator (11) is provided in the heat exchange chamber (501) of the heat exchange member (5), and a part of the liquid cooling pipeline (3) close to the heat exchange member (5) extends into the heat exchange chamber (501) and can contact the radiator (11) to cool the cooling medium.
9. The cabinet structure according to claim 8, characterized in that, The radiator (11) includes a plurality of heat dissipation fins provided on its surface, a part of the positions of the heat dissipation fins can be used to contact the liquid cooling pipeline (3), and the other parts of the positions of the heat dissipation fins can contact the air flow introduced by the air inlet member (7); The radiator (11) includes a refrigeration chamber, the refrigeration chamber is used to fit the side of the heat dissipation fin away from the liquid cooling pipeline (3), an inlet and an outlet are provided on opposite sides of the refrigeration chamber, and a heat dissipation member is provided between the inlet and the outlet, and the heat dissipation member can take out the heat generated by the heat dissipation fin through the outlet from the heat dissipation member.
10. A server system, characterized in that, Including the cabinet structure according to any one of claims 1 to 9.