Integrated server and server cooling mechanism
By designing a cooling chamber, fan, filter plate, and self-cleaning components in an integrated server, the problems of uneven heat dissipation and filter clogging are solved, achieving stable cooling effect and efficient self-cleaning function.
Patent Information
- Application Number
- CN202510856868.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-25
- Publication Date
- 2025-10-28
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Existing integrated servers have low heat dissipation efficiency and their filters are prone to clogging, affecting heat dissipation performance.
Design an integrated server cooling mechanism that uses a cooling chamber, fan, air inlet duct, filter plate, electric cleaning brush and linkage components to achieve uniform heat dissipation, and uses telescopic components to drive the dust collection frame to self-clean the filter plate, ensuring stable air intake.
It achieves uniform cooling and heat dissipation, and the self-cleaning mechanism ensures that the filter screen can maintain a stable air intake even after long-term use, thus improving cooling efficiency.
Smart Images

Figure CN120857421A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of integrated server cooling, and in particular to an integrated server and server cooling mechanism. Background Technology
[0002] An integrated server is a server that integrates computing, storage, networking, and other resources and functions into a single unit or system. Based on cloud computing technology, it integrates computing, storage, and network resources into a single unit. Through virtualization technology, a physical server can be divided into multiple virtual servers, each capable of independently running an operating system and applications. It is a multi-functional information service platform, employing an integrated hardware and software design, highly integrating functions such as intranet management, internet access management, and basic network applications. It replaces a multi-server cluster with a single network host, meeting diverse user needs. It integrates computing and storage functions within a single chassis, typically equipped with dual server modules, providing flexible server functionality and flash and rotating media options. It optimizes SMB and enterprise-level deployments, supporting easy horizontal and vertical scaling of data storage. By integrating computing, storage, and networking resources onto a unified platform and using virtualization technology to pool physical server resources, it achieves centralized management and flexible allocation of hardware resources, offering advantages such as simplified IT architecture, improved resource utilization, and flexible scalability.
[0003] Existing integrated servers typically rely on cooling fans for heat dissipation, which is inefficient and results in uneven heat dissipation among the various modules within the integrated server.
[0004] An integrated server cooling mechanism, disclosed in CN221079274U, comprises a server chamber at one end, a cooling chamber at the other end, and a control chamber between them, separated by a partition. Several devices to be cooled are placed in the server chamber. A cooler device is vertically installed inside the cooling chamber, and a cooling fan is externally mounted above the top panel of the chamber. The devices to be cooled and the cooler device are connected in series through a cooling circulation system to form a complete water cooling circulation channel. The vertically installed cooler device and the externally mounted cooling fan ensure sufficient airflow space within the cooling chamber. Ambient air enters the cooling chamber perpendicular to the cooler device, resulting in a larger and more uniform airflow area. The radiator units are rationally arranged within the cooling chamber to maximize their heat dissipation area within the chamber space to meet the heat exchange requirements of the devices to be cooled.
[0005] While the aforementioned technical solutions can achieve uniform heat dissipation, they cannot clean the filter. Over time, the filter will become clogged, severely affecting heat dissipation. Therefore, an integrated server and server cooling mechanism are proposed. Summary of the Invention
[0006] To overcome the shortcomings of existing technologies, this invention proposes an integrated server and server cooling mechanism that can uniformly dissipate heat within the integrated server, facilitate the cleaning of the filter, ensure stable air intake, and improve cooling performance.
[0007] To solve the above-mentioned technical problems, the basic technical solution proposed by this invention is as follows:
[0008] An integrated server cooling mechanism includes a cooling chamber with a device compartment extending through both sides of its upper surface. A fan is installed at the upper end of the cooling chamber, and air inlet pipes are connected to both ends of the fan, which are connected to the device compartment via the air inlet pipes. Air inlets are provided on both sides of the cooling chamber, and air inlet frames are fitted along the inner side of each air inlet. A filter screen is rotatably installed inside the air inlet frame. A cooling component is provided inside the cooling chamber to cool the air entering through the air inlet and send it into the air inlet pipe. A telescopic component is installed on the upper inner wall of the device compartment, and a dust collection frame is connected to the telescopic component.
[0009] An electric cleaning brush is installed between the inner walls of both sides of the dust collection frame, and the electric cleaning brush is in contact with the surface of the filter screen. A cleaning component is also provided in the integrated frame, which is used to clean the electric cleaning brush. A rotating shaft is connected to both sides of the filter screen, and a ratchet is fitted at the end of the rotating shaft away from the air inlet frame. A slide is slidably connected in the cooling chamber, and the slide is above the ratchet and has a limit groove. A ratchet is slidably connected in the limit groove and the ratchet meshes with the ratchet. A linkage component is also provided in the cooling chamber, which is used to drive the slide to slide when the dust collection frame slides.
[0010] Preferably, the cooling assembly includes a coolant tank, mounting bases, water pumps, and S-shaped coolant pipes. The coolant tank is centrally mounted in the cooling chamber. The mounting bases are mounted on the upper ends of both sides of the coolant tank and communicate with it. Water pumps are installed at both ends of each mounting base. The S-shaped coolant pipes connect the water pumps on the left and right sides. One of the two water pumps on the other side is used to draw coolant from the coolant tank, and the other is used to return the coolant to the coolant tank.
[0011] Preferably, the S-shaped coolant pipes on both sides are arranged in the equipment compartments on both sides, and close to the side where the equipment compartment and the air inlet pipe are connected.
[0012] Preferably, the cleaning assembly includes a slide rail, a guide rail, a collar, a connecting seat, a scraper, a rotating plate, and a pressure plate. The slide rail is located on the side of the dust collection frame away from the filter screen and is symmetrically located on both sides along the length of the dust collection frame. Two guide rails are provided, corresponding to the slide rails on both sides and connected to the side of the integrated frame away from the filter screen. The collar is slidably fitted on the outside of the guide rail. The scraper is connected to the collar and extends through the slide rail into the dust collection frame. The extended end of the scraper is in contact with the surface of the electric cleaning brush. The connecting seat is connected to the collar. The rotating plate is rotatably connected to the connecting seat. The two ends of the pressure plate are rotatably connected to the rotating plates on both sides, and the pressure plate abuts against the lower inner wall of the cooling chamber.
[0013] Preferably, the collar is connected to the end of the guide slide rod and a spring is sleeved on the outside of the guide slide rod. The scraper is arc-shaped and a brush is installed on the side surface that is in contact with the electric cleaning brush.
[0014] Preferably, the dust collection frame is connected to the dust collection frame through the side away from the filter screen, and a dust collection hose is connected through the dust collection frame. The end of the dust collection hose away from the dust collection frame is connected to a vacuum cleaner, and the vacuum cleaner is installed on the lower inner wall of the cooling chamber.
[0015] Preferably, the linkage component includes a slide block and a rotating rod. The slide block is slidably disposed in the equipment compartment. One end of the rotating rod is rotatably connected to the slide block, and the other end is rotatably connected to the slide frame. The dust collection frame abuts against the lower end face of the slide block.
[0016] Preferably, a second guide slide rod is connected to the cooling chamber, the slide is slidably sleeved on the outside of the second guide slide rod, a second spring sleeved on the outside of the second guide slide rod is connected between the end of the slide and the end of the second guide slide rod, a third guide slide rod is connected to the equipment compartment, the slide seat is slidably sleeved on the outside of the third guide slide rod, and a third spring is connected between the ratchet and the inner wall of the limiting slide groove.
[0017] An integrated server includes a rack housing multiple server modules. A glass door is rotatably mounted on the front of the rack. The rack is characterized by a cooling chamber partitioned at the bottom, with air inlets extending through both sides of the cooling chamber. A fan is installed on the lower inner wall of the rack, and exhaust ducts are connected to both sides of the fan.
[0018] Preferably, the exhaust duct is connected at equal intervals with multiple air inlet ducts facing the server module, and the rear side of the cabinet is provided with an exhaust mesh panel.
[0019] The beneficial effects of the present invention are:
[0020] 1. The technical solution of the present invention uses a fan to draw in air through the air inlet and the filter screen, cool it through the S-shaped coolant pipe installed on the coolant tank, and then discharge it to the surrounding area of each layer of server modules in the cabinet through the exhaust pipe and branch pipe, so as to achieve uniform cooling and heat dissipation.
[0021] 2. The technical solution of this invention uses a telescopic component to drive the dust collection frame to move up and down reciprocally, which enables the electric cleaning brush installed inside the dust collection frame to adhere to the filter screen, thereby cleaning the filter screen and ensuring that the filter screen can maintain a stable air intake even after long-term use. At the same time, when the dust collection frame moves down until the pressure plate abuts against the lower inner wall of the cooling chamber, the pressure plate will push the rotating plates on both sides to rotate, thereby causing the collars and connecting seats on both sides of the dust collection frame to slide away from each other. At the same time, it causes the scraper connected to the collar and extending inside the dust collection frame to slide, so that when the electric cleaning brush rotates to clean the filter screen, it can also drive the scraper to clean the electric cleaning brush, realizing the self-cleaning of the electric cleaning brush, thereby improving the cleaning effect of the electric cleaning brush on the filter screen and ensuring that the filter screen can maintain a stable air intake even after long-term use.
[0022] 3. When the dust collection frame is moved upward by the telescopic component, the dust collection frame can also be driven to contact the slide block, thereby pulling the slide frame to slide on the outside of the guide slide rod two. During the process, the slide frame drives the ratchet to slide towards the ratchet wheel, and drives the ratchet wheel to rotate through meshing. Then, the filter screen plate is driven to rotate and flip inside the air inlet frame through the rotating shaft, so as to facilitate cleaning of both sides of the filter screen plate and further improve the filter screen plate to have a stable air intake even after long-term use. Attached Figure Description
[0023] Figure 1 This is a schematic diagram of the structure of the present invention;
[0024] Figure 2 This is a cross-sectional view of the front structure of the present invention;
[0025] Figure 3 This is a schematic diagram of the internal structure of the cabinet of the present invention;
[0026] Figure 4 This is a schematic diagram of the cooling mechanism of the present invention;
[0027] Figure 5 This is a schematic diagram of the cleaning component of the present invention;
[0028] Figure 6 This is a side view of the cleaning component of the present invention;
[0029] Figure 7 This is a schematic diagram of the structure of the linkage component of the present invention;
[0030] Figure 8 This is a top sectional view of the cleaning component of the present invention;
[0031] Figure 9 This is a side sectional view of the linkage component of the present invention;
[0032] Figure 10 for Figure 9 Enlarged view of point A in the middle.
[0033] Explanation of reference numerals in the attached figures:
[0034] 1. Server rack; 2. Server module; 3. Cooling chamber; 4. Glass cabinet door; 5. Air inlet; 6. Air inlet frame; 7. Filter plate; 8. Fan; 9. Equipment compartment; 10. Air inlet duct; 11. Exhaust duct; 12. Branch duct; 13. Coolant tank; 14. Mounting base; 15. Water pump; 16. S-shaped coolant hose; 17. Telescopic component; 18. Dust collection frame; 19. Dust collection frame; 20. Vacuum cleaner; 21. Vacuum suction hose; 22. 23. Electric cleaning brush; 24. Slide rail; 25. Guide slide bar 1; 26. Collar; 27. Spring 1; 28. Connecting seat; 29. Scraper; 20. Rotating plate 1; 30. Pressure plate; 31. Rotating shaft; 32. Ratchet; 33. Guide slide bar 2; 34. Slide frame; 35. Spring 2; 36. Guide slide bar 3; 37. Slide seat; 38. Rotating rod; 39. Limiting slide groove; 40. Ratchet; 41. Spring 3; 42. Air outlet mesh. Detailed Implementation
[0035] The following will be combined with the appendix Figure 1 To be continued Figure 10 The technical solutions in the embodiments of the present invention have been clearly and completely described. Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of them. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present invention.
[0036] Example 1:
[0037] like Figure 1-10 As shown, the present invention discloses an integrated server cooling mechanism, including a cooling chamber 3, with a device compartment 9 connected to both sides of the upper end face of the cooling chamber 3. A fan 8 is installed at the upper end of the cooling chamber 3, and air inlet pipes 10 are connected to both ends of the fan 8 and are connected to the device compartment 9 through the air inlet pipes 10. The cooling chamber 3 is characterized in that air inlets 5 are provided on both sides of the cooling chamber 3, and an air inlet frame 6 is fitted inside the air inlet 5 along the inner side of the cooling chamber 3. A filter screen 7 is rotatably installed inside the air inlet frame 6. A cooling component is provided inside the cooling chamber 3. The cooling component is used to cool the air entering through the air inlet 5 and send it into the air inlet pipe 10. A telescopic component 17 is installed on the upper inner wall of the device compartment 9, and a dust collection frame 18 is connected through the telescopic component 17.
[0038] An electric cleaning brush 22 is installed between the inner walls of both sides of the dust collection frame 18, and the electric cleaning brush 22 is in contact with the surface of the filter screen 7. A cleaning component is also provided in the integrated frame 18 for cleaning the electric cleaning brush 22. A rotating shaft 31 is connected to both sides of the filter screen 7, and a ratchet 32 is fitted at the end of the rotating shaft 31 away from the air inlet frame 6. A slide 34 is slidably connected in the cooling chamber 3, and the slide 34 is above the ratchet 32. A limiting slide groove 39 is provided, and a ratchet 40 is slidably connected in the limiting slide groove 39, and the ratchet 40 engages with the ratchet 32. A linkage component is also provided in the cooling chamber 3 for driving the slide 34 to slide when the dust collection frame 18 slides.
[0039] Example 2:
[0040] like Figure 1-10 As shown, the present invention discloses an integrated server cooling mechanism. Compared with Embodiment 1, this embodiment discloses the structure of the cooling component.
[0041] An integrated server cooling mechanism includes a cooling chamber 3, with a device compartment 9 connected to both sides of the upper end face of the cooling chamber 3. A fan 8 is installed at the upper end of the cooling chamber 3, and air inlet pipes 10 are connected to both ends of the fan 8 and are connected to the device compartment 9 through the air inlet pipes 10. The cooling chamber 3 is characterized in that air inlets 5 are provided on both sides of the cooling chamber 3, and an air inlet frame 6 is fitted inside the air inlet 5 along the inner side of the cooling chamber 3. A filter screen 7 is rotatably installed inside the air inlet frame 6. A cooling component is provided inside the cooling chamber 3 to cool the air entering through the air inlet 5 and send it into the air inlet pipe 10. A telescopic component 17 is installed on the upper inner wall of the device compartment 9, and a dust collection frame 18 is connected through the telescopic component 17.
[0042] An electric cleaning brush 22 is installed between the inner walls of both sides of the dust collection frame 18, and the electric cleaning brush 22 is in contact with the surface of the filter screen 7. A cleaning component is also provided inside the integrated frame 18 for cleaning the electric cleaning brush 22. A rotating shaft 31 is connected to both sides of the filter screen 7, and a ratchet 32 is fitted at the end of the rotating shaft 31 away from the air inlet frame 6. A slide 34 is slidably connected inside the cooling chamber 3, and the slide 34 is above the ratchet 32. A limiting groove 39 is provided, and a ratchet 40 is slidably connected inside the limiting groove 39, and the ratchet 40 engages with the ratchet 32. A linkage component is also provided inside the cooling chamber 3, which is used to drive the slide 34 to slide when the dust collection frame 18 slides.
[0043] The cooling assembly includes a coolant tank 13, mounting bases 14, water pumps 15, and S-shaped coolant pipes 16. The coolant tank 13 is centrally mounted in the cooling chamber 3. The mounting bases 14 are mounted on the upper ends of both sides of the coolant tank 13 and are in communication with the coolant tank 13. Water pumps 15 are installed at both ends of each mounting base 14. The S-shaped coolant pipes 16 are connected between the water pumps 15 on the left and right sides. One of the two water pumps 15 on the other side is used to draw coolant from the coolant tank 13, and the other is used to return the coolant to the coolant tank 13.
[0044] The S-shaped coolant pipes 16 on both sides are respectively arranged in the equipment compartments 9 on both sides, and close to the side where the equipment compartment 9 and the air inlet pipe 10 are connected.
[0045] By operating the fan 8, air can be drawn in through the air inlet 5 and the filter plate 7, cooled through the S-shaped coolant pipe 16 installed on the coolant tank 13, and then discharged through the exhaust pipe 11 and the branch pipe 12 to the surrounding area of each layer of server modules 2 in the rack 1, so as to achieve uniform cooling and heat dissipation.
[0046] Example 3:
[0047] like Figure 1-10 As shown, the present invention discloses an integrated server cooling mechanism. Compared with Embodiment 2, this embodiment discloses the structure of the cleaning component.
[0048] An integrated server cooling mechanism includes a cooling chamber 3, with a device compartment 9 connected to both sides of the upper end face of the cooling chamber 3. A fan 8 is installed at the upper end of the cooling chamber 3, and air inlet pipes 10 are connected to both ends of the fan 8 and are connected to the device compartment 9 through the air inlet pipes 10. The cooling chamber 3 is characterized in that air inlets 5 are provided on both sides of the cooling chamber 3, and an air inlet frame 6 is fitted inside the air inlet 5 along the inner side of the cooling chamber 3. A filter screen 7 is rotatably installed inside the air inlet frame 6. A cooling component is provided inside the cooling chamber 3 to cool the air entering through the air inlet 5 and send it into the air inlet pipe 10. A telescopic component 17 is installed on the upper inner wall of the device compartment 9, and a dust collection frame 18 is connected through the telescopic component 17.
[0049] An electric cleaning brush 22 is installed between the inner walls of both sides of the dust collection frame 18, and the electric cleaning brush 22 is in contact with the surface of the filter screen 7. A cleaning component is also provided inside the integrated frame 18 for cleaning the electric cleaning brush 22. A rotating shaft 31 is connected to both sides of the filter screen 7, and a ratchet 32 is fitted at the end of the rotating shaft 31 away from the air inlet frame 6. A slide 34 is slidably connected inside the cooling chamber 3, and the slide 34 is above the ratchet 32. A limiting groove 39 is provided, and a ratchet 40 is slidably connected inside the limiting groove 39, and the ratchet 40 engages with the ratchet 32. A linkage component is also provided inside the cooling chamber 3, which is used to drive the slide 34 to slide when the dust collection frame 18 slides.
[0050] The cleaning assembly includes a slide 23, a guide slide rod 24, a collar 25, a connecting seat 27, a scraper 28, a rotating plate 29, and a pressure plate 30. The slide 23 is located on the side of the dust collection frame 18 away from the filter screen 7 and is symmetrically located on both sides of the length of the dust collection frame 18. There are two guide slide rods 24, which correspond to the slide 23 on both sides and are connected to the side of the integrated frame 18 away from the filter screen 7. The collar 25 is slidably fitted on the outside of the guide slide rod 24. The scraper 28 is connected to the collar 25 and extends through the slide 23 into the dust collection frame 18. The extended end of the scraper 28 is in contact with the surface of the electric cleaning brush 22. The connecting seat 27 is connected to the collar 25. The rotating plate 29 is rotatably connected to the connecting seat 27. The two ends of the pressure plate 30 are rotatably connected to the rotating plates 29 on both sides, and the pressure plate 30 is in contact with the lower inner wall of the cooling chamber 3.
[0051] The end of the collar 25 is connected to the guide slide rod 24 and a spring 26 is sleeved on the outside of the guide slide rod 24. The scraper 28 is arc-shaped and a brush is installed on the side surface that is in contact with the electric cleaning brush 22.
[0052] The dust collection frame 18 is connected to the dust collection frame 19 on the side away from the filter screen 7, and a dust collection hose 21 is connected through the dust collection frame 19. The end of the dust collection hose 21 away from the dust collection frame 19 is connected to a vacuum cleaner 20, and the vacuum cleaner 20 is installed on the lower inner wall of the cooling chamber 3.
[0053] The reciprocating movement of the dust collection frame 18 via the telescopic component 17 allows the electric cleaning brush 22 installed inside the dust collection frame 18 to adhere to the filter screen 7, thereby cleaning the filter screen 7 and ensuring that the filter screen 7 maintains a stable airflow even after long-term use. Simultaneously, when the dust collection frame 18 moves downwards until the pressure plate 30 contacts the lower inner wall of the cooling chamber 3, the pressure plate 30 will push the rotating plates 29 on both sides to rotate, causing the collars 25 and connecting seats 27 on both sides of the dust collection frame 18 to slide away from each other. This also causes the scraper 28, which extends from the collars 25 and is connected to the dust collection frame 18, to slide. This allows the electric cleaning brush 22 to clean the filter screen 7 while simultaneously cleaning the electric cleaning brush 22 with the scraper 28, achieving self-cleaning of the electric cleaning brush 22 and improving its cleaning effect on the filter screen 7, ensuring that the filter screen 7 maintains a stable airflow even after long-term use.
[0054] Example 4:
[0055] like Figure 1-10 As shown, the present invention discloses an integrated server cooling mechanism. Compared with Embodiment 3, this embodiment discloses the structure of the linkage component.
[0056] An integrated server cooling mechanism includes a cooling chamber 3, with a device compartment 9 connected to both sides of the upper end face of the cooling chamber 3. A fan 8 is installed at the upper end of the cooling chamber 3, and air inlet pipes 10 are connected to both ends of the fan 8 and are connected to the device compartment 9 through the air inlet pipes 10. The cooling chamber 3 is characterized in that air inlets 5 are provided on both sides of the cooling chamber 3, and an air inlet frame 6 is fitted inside the air inlet 5 along the inner side of the cooling chamber 3. A filter screen 7 is rotatably installed inside the air inlet frame 6. A cooling component is provided inside the cooling chamber 3 to cool the air entering through the air inlet 5 and send it into the air inlet pipe 10. A telescopic component 17 is installed on the upper inner wall of the device compartment 9, and a dust collection frame 18 is connected through the telescopic component 17.
[0057] An electric cleaning brush 22 is installed between the inner walls of both sides of the dust collection frame 18, and the electric cleaning brush 22 is in contact with the surface of the filter screen 7. A cleaning component is also provided inside the integrated frame 18 for cleaning the electric cleaning brush 22. A rotating shaft 31 is connected to both sides of the filter screen 7, and a ratchet 32 is fitted at the end of the rotating shaft 31 away from the air inlet frame 6. A slide 34 is slidably connected inside the cooling chamber 3, and the slide 34 is above the ratchet 32. A limiting groove 39 is provided, and a ratchet 40 is slidably connected inside the limiting groove 39, and the ratchet 40 engages with the ratchet 32. A linkage component is also provided inside the cooling chamber 3, which is used to drive the slide 34 to slide when the dust collection frame 18 slides.
[0058] The linkage component includes a slide 37 and a rotating rod 38. The slide 37 is slidably disposed in the equipment compartment 9. One end of the rotating rod 38 is rotatably connected to the slide 37, and the other end is rotatably connected to the slide frame 34. The dust collection frame 18 is in contact with the lower end face of the slide 37.
[0059] A guide slide rod 2 33 is connected inside the cooling chamber 3. A slide 34 is slidably sleeved on the outside of the guide slide rod 2 33. A spring 2 35 sleeved on the outside of the guide slide rod 2 33 is connected between the end of the slide 34 and the end of the guide slide rod 2 33. A guide slide rod 36 is connected inside the equipment compartment 9. A slide seat 37 is slidably sleeved on the outside of the guide slide rod 3 36. A spring 3 41 is connected between the ratchet 40 and the inner wall of the limiting slide groove 39.
[0060] When the dust collection frame 18 is moved upward by the telescopic component 17, it can also cause the dust collection frame 18 to come into contact with the slide 37, thereby pulling the slide 34 to slide on the outside of the guide slide rod 33. During the process, the slide 34 drives the ratchet 40 to slide closer to the ratchet 32, and drives the ratchet 32 to rotate through meshing. Then, through the rotating shaft 31, it drives the filter screen 7 to rotate and flip inside the air inlet frame 6, so as to facilitate cleaning of both sides of the filter screen 7, and further improve the filter screen 7 to have a stable air intake even after long-term use.
[0061] Embodiment 5:
[0062] like Figure 1-10 As shown, this invention discloses an integrated server, including a rack 1, in which multiple server modules 2 are installed. A glass door 4 is rotatably installed on the front side of the rack 1. The rack 1 is characterized by having a cooling chamber 3 on its lower side, with air inlets 5 extending through both sides of the cooling chamber 3. A fan 8 is installed on the lower inner wall of the rack 1, and exhaust pipes 11 are connected through both sides of the fan 8.
[0063] Multiple branch pipes 12, pointing towards the server module 2, are connected at equal intervals to the exhaust duct 11. An exhaust mesh plate 42 is provided on the rear side of the cabinet 1. This design ensures uniform cooling airflow within the cabinet 1, improving the uniformity of cooling and heat dissipation.
[0064] Based on the disclosure and teachings of the foregoing specification, those skilled in the art can make changes and modifications to the above embodiments. Therefore, the present invention is not limited to the specific embodiments disclosed and described above, and some modifications and changes to the present invention should also fall within the protection scope of the claims of the present invention. Furthermore, although some specific terms are used in this specification, these terms are only for convenience of explanation and do not constitute any limitation on the present invention.
Claims
1. An integrated server cooling mechanism, comprising a cooling chamber (3), wherein a device compartment (9) is connected to both sides of the upper end face of the cooling chamber (3), a fan (8) is installed at the upper end of the cooling chamber (3), and air inlet pipes (10) are connected to both ends of the fan (8), and the fan communicates with the device compartment (9) through the air inlet pipes (10), characterized in that, The cooling chamber (3) has air inlets (5) on both sides. An air inlet frame (6) is fitted inside the cooling chamber (3) along the side. A filter screen (7) is rotatably installed inside the air inlet frame (6). A cooling assembly is provided inside the cooling chamber (3). The cooling assembly is used to cool the air entering through the air inlet (5) and send it into the air inlet pipe (10). A telescopic component (17) is installed on the upper inner wall of the equipment compartment (9), and a dust collection frame (18) is connected through the telescopic component (17). An electric cleaning brush (22) is installed between the inner walls of both sides of the dust collection frame (18), and the electric cleaning brush (22) is in contact with the surface of the filter screen (7). A cleaning component is also provided in the integrated frame (18), which is used to clean the electric cleaning brush (22). A rotating shaft (31) is connected to both sides of the filter screen (7), and a ratchet (32) is fitted at the end of the rotating shaft (31) away from the air inlet frame (6). A slide (34) is slidably connected in the cooling chamber (3), and the slide (34) is above the ratchet (32) and has a limiting groove (39). A ratchet (40) is slidably connected in the limiting groove (39), and the ratchet (40) meshes with the ratchet (32). A linkage component is also provided in the cooling chamber (3), which is used to drive the slide (34) to slide when the dust collection frame (18) slides.
2. The integrated server cooling mechanism according to claim 1, characterized in that, The cooling assembly includes a coolant tank (13), a mounting base (14), a water pump (15), and an S-shaped coolant pipe (16). The coolant tank (13) is centrally installed in the cooling chamber (3). The mounting base (14) is installed on the upper ends of both sides of the coolant tank (13) and is in communication with the coolant tank (13). The water pump (15) is installed at both ends of each mounting base (14). The S-shaped coolant pipe (16) is connected between the water pumps (15) on the left and right sides. One of the two water pumps (15) on the other side is used to draw coolant from the coolant tank (13), and the other is used to return the coolant to the coolant tank (13).
3. The integrated server cooling mechanism according to claim 2, characterized in that, The S-shaped coolant pipes (16) on both sides are respectively arranged in the equipment compartments (9) on both sides, and close to the side where the equipment compartment (9) and the air inlet pipe (10) are connected.
4. The integrated server cooling mechanism according to claim 1, characterized in that, The cleaning assembly includes a slide (23), a guide slide rod (24), a collar (25), a connecting seat (27), a scraper (28), a rotating plate (29), and a pressure plate (30). The slide (23) is located on the side of the dust collection frame (18) away from the filter screen (7) and is symmetrically located on both sides of the length of the dust collection frame (18). There are two guide slide rods (24), which correspond to the slides (23) on both sides and are connected to the side of the integrated frame (18) away from the filter screen (7). The collar (25) slides... Sleeve on the outside of guide slide bar 1 (24), scraper (28) is connected to collar (25) and extends through slide rail (23) into dust collection frame (18). The extended end of scraper (28) is in contact with the surface of electric cleaning brush (22). Connecting seat (27) is connected to collar (25). Rotating plate 1 (29) is rotatably connected to connecting seat (27). Both ends of pressure plate (30) are rotatably connected to rotating plate 1 (29) on both sides, and pressure plate (30) is in contact with the lower inner wall of cooling chamber (3).
5. An integrated server cooling mechanism according to claim 4, characterized in that, The collar (25) is connected to the end of the guide slide rod (24) by a spring (26) sleeved on the outside of the guide slide rod (24). The scraper (28) is arc-shaped and has a brush installed on the side that is in contact with the electric cleaning brush (22).
6. An integrated server cooling mechanism according to claim 4, characterized in that, The dust collection frame (18) is connected to the dust collection frame (19) on the side away from the filter screen (7), and a dust collection hose (21) is connected through the dust collection frame (19). A vacuum cleaner (20) is connected to the end of the dust collection hose (21) away from the dust collection frame (19). The vacuum cleaner (20) is installed on the lower inner wall of the cooling chamber (3).
7. An integrated server cooling mechanism according to claim 1, characterized in that, The linkage component includes a slide (37) and a rotating rod (38). The slide (37) is slidably disposed in the equipment compartment (9). One end of the rotating rod (38) is rotatably connected to the slide (37), and the other end is rotatably connected to the slide frame (34). The dust collection frame (18) is in contact with the lower end face of the slide (37).
8. An integrated server cooling mechanism according to claim 7, characterized in that, The cooling chamber (3) is connected to a guide slide rod two (33), the slide frame (34) is slidably sleeved on the outside of the guide slide rod two (33), and a spring two (35) sleeved on the outside of the guide slide rod two (33) is connected between the end of the slide frame (34) and the end of the guide slide rod two (33). The equipment compartment (9) is connected to a guide slide rod three (36), the slide seat (37) is slidably sleeved on the outside of the guide slide rod three (36), and a spring three (41) is connected between the ratchet (40) and the inner wall of the limiting slide groove (39).
9. An integrated server, comprising an integrated server cooling mechanism according to any one of claims 1-8, characterized in that, The system includes a server rack (1), which houses multiple server modules (2). A glass cabinet door (4) is rotatably installed on the front side of the server rack (1). The system is characterized in that a cooling chamber (3) is partitioned on the lower side of the server rack (1), and air inlets (5) are provided on both sides of the cooling chamber (3). A fan (8) is installed on the lower inner wall of the server rack (1), and exhaust pipes (11) are connected to both sides of the fan (8).
10. An integrated server according to claim 9, characterized in that, The exhaust duct (11) is connected at equal intervals to multiple branch pipes (12) facing the server module (2), and the rear side of the cabinet (1) is provided with an exhaust mesh plate (42).
Citation Information
Patent Citations
Integrated server cooling mechanism
CN221079274U