Server

By combining a sliding connecting plate and a fan with cooling water, the problem of poor server heat dissipation is solved, achieving efficient and comprehensive cooling and ensuring stable server operation.

CN121900598APending Publication Date: 2026-04-21赵晨
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
赵晨
Filing Date
2023-05-26
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Existing technologies have poor heat dissipation for the server body, which can easily damage internal components due to overheating.

Method used

The heat sink and connecting plate structure with sliding connection are combined with a fan and cooling water cooling method. Heat exchange and fan blowing are achieved through the sliding connecting plate. The slide is fixed by an electromagnet. Multiple vents and cleaning brushes ensure ventilation. The fan and slide rod are driven by a motor to achieve high-frequency reciprocating motion to enhance cooling.

Benefits of technology

It achieves efficient and comprehensive cooling of the server body, improves heat dissipation, prevents overheating damage, and enhances the reliability and stability of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention belongs to the technical field of servers, and particularly relates to a server which comprises a heat dissipation frame, a cooling groove is formed in the heat dissipation frame, a connecting plate is slidably connected to the heat dissipation frame, a plurality of air holes are formed in the connecting plate, a sliding frame is slidably connected to the heat dissipation frame, a transmission seat is connected to the sliding frame, and the transmission seat can make contact with the lower end faces of the air holes. The sliding frame is connected with a fan connecting plate, the fan connecting plate can rotate with a virtual axis as a shaft, a first compression spring is fixedly connected between the sliding frame and the heat dissipation frame, the sliding rod is connected to the sliding frame in a sliding mode, the sliding rod is connected with a transmission seat, the auxiliary plate is connected to the sliding frame, the auxiliary plate is rotationally connected with a rotating rod, the rotating rod is fixedly connected with a protruding block, and the protruding block is fixedly connected with the fan connecting plate. The cooling device has the beneficial effect that the server body can be efficiently and comprehensively cooled.
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Description

Technical Field

[0001] This invention belongs to the field of server technology, and in particular relates to a server. Background Technology

[0002] A server is a type of computer that runs faster, handles higher loads, and is more expensive than a regular computer. Servers provide computing or application services to other client machines on a network. With the rapid development of cloud computing, the internet industry, and artificial intelligence, servers are required to have increasingly stronger performance and higher density. At the same time, as server performance continues to improve, the power consumption of a single server is also increasing, leading to greater heat generation. Overheating can easily damage internal server components, making effective heat dissipation increasingly important. However, current technologies are relatively ineffective at cooling the server body. Summary of the Invention

[0003] The present invention provides a server that has the advantage of being able to efficiently and comprehensively cool the server body.

[0004] A server includes a heat sink with cooling grooves, a connecting plate slidably connected to the heat sink, multiple vent holes on the connecting plate, a slide rail slidably connected to the heat sink, a transmission seat connected to the slide rail, the transmission seat being able to contact the lower end face of the vent holes, a fan connecting plate connected to the slide rail, the fan connecting plate being able to rotate about a virtual axis, and a first compression spring fixedly connected between the slide rail and the heat sink.

[0005] It also includes a slide rod that is slidably connected to the slide frame, and a transmission seat is connected to the slide rod.

[0006] It also includes an auxiliary plate connected to the carriage, a rotating rod rotatably connected to the auxiliary plate, a protrusion fixed to the rotating rod, a second compression spring fixed between the sliding rod and the carriage, and a rectangular electromagnet fixed to the heat dissipation frame, which can attract the carriage.

[0007] The auxiliary plate is slidably connected to the carriage, and the auxiliary plate is provided with multiple protrusions, the height of which gradually increases from left to right. Attached Figure Description

[0008] The present invention will now be described in further detail with reference to the accompanying drawings and specific implementation methods.

[0009] Figure 1 This is a schematic diagram of the heat sink structure;

[0010] Figure 2 This is a structural schematic diagram of the connecting plate;

[0011] Figure 3 This is a schematic diagram of the transmission seat structure;

[0012] Figure 4 This is a structural diagram of the fan connection plate;

[0013] Figure 5 This is a schematic diagram of the carriage structure;

[0014] Figure 6 This is a schematic diagram of the slide bar structure;

[0015] Figure 7 This is a schematic diagram of the mating rod structure;

[0016] Figure 8 This is a schematic diagram of the cleaning brush structure;

[0017] Figure 9 and Figure 10 This is a schematic diagram of the overall structure of a server. Detailed Implementation

[0018] See Figure 1-4 The diagram illustrates an embodiment of the present invention that facilitates efficient and comprehensive cooling of the server body. Further,

[0019] This device includes a heat sink 101 with a cooling groove 102. A connecting plate 103 is slidably connected to the heat sink 101, and multiple ventilation holes 104 are provided on the connecting plate 103. A slide 301 is slidably connected to the heat sink 101, and a transmission seat 501 is connected to the slide 301. The transmission seat 501 can contact the lower end face of the ventilation holes 104. A fan connecting plate 401 is connected to the slide 301 and can rotate about a virtual axis. A first compression spring is fixed between the slide 301 and the heat sink 101. A first electric push rod that can drive the connecting plate 103 to slide is fixed to the heat sink 101. Multiple fans are connected to the fan connecting plate 401 by screwing bolts into the fan connecting plate 401.

[0020] The server body is connected to the connecting plate 103 by tightening bolts. Then, flowing cooling water is injected into the higher side of the cooling tank 102, so that the cooling water automatically flows from the higher side to the lower side along the cooling tank 102. When the server is working and generates a lot of heat, the connecting plate 103 can be operated to slide up and down on the heat sink 101, so that the server body is constantly in contact with the inner wall of the heat sink 101, thereby allowing the cooling water in the cooling tank 102 to continuously exchange heat with the server body, thus completing the cooling work of the server body.

[0021] Simultaneously, when the server is operating and generating a large amount of heat, multiple fans can be activated to rapidly circulate air through the space. This airflow is then directed through multiple vents 104 to the underside of the server body, further cooling the system. Furthermore, as the connecting plate 103 slides downwards, it gradually presses against the transmission seat 501, causing the slide 301 to gradually overcome the spring force of the first compression spring and slide backwards. As the connecting plate 103 slides up and down repeatedly, the position of the airflow from the fans on the fan connecting plate 401 changes, thus distributing airflow to different areas on the underside of the server body. This achieves efficient and comprehensive cooling of the server body, improving the overall cooling effect.

[0022] See Figure 3-4 The diagram illustrates an embodiment of the invention that further improves the cooling effect.

[0023] It also includes a slide rod 302 that is slidably connected to the slide 301, and a transmission seat 501 is connected to the slide rod 302.

[0024] When the operating connection plate 103 slides to a certain height and then stops sliding, the operable slide bar 302 slides back and forth on the slide 301 at a high frequency, thereby enabling multiple fans on the fan connection plate 401 to slide back and forth at a high frequency within a certain range, thereby enhancing the cooling of a certain section of the server body and further improving the cooling effect.

[0025] See Figure 5-6 This shows a schematic diagram of an embodiment of the present invention that facilitates high-frequency reciprocating sliding of the slide bar 302 on the carriage 301. Further,

[0026] It also includes an auxiliary plate 601 connected to the slide 301, a rotating rod 602 rotatably connected to the auxiliary plate 601, a protrusion 603 fixedly connected to the rotating rod 602, and a first motor that can drive the rotating rod 602 to rotate fixedly connected to the auxiliary plate 601.

[0027] Before the connecting plate 103 slides, first move the rotating rod 602 from... Figure 6The shown posture is rotated 90° clockwise, thereby rotating the protrusion 603 to contact the slide bar 302 and gradually pressing the slide bar 302 against the elastic force of the second compression spring to slide. Then, the connecting plate 103 is operated to slide downward, which causes the connecting plate 103 to gradually provide backward pressure to the slide bar 302 through the pressure transmission seat 501. At this time, since the slide bar 302 is against the protrusion 603, the slide 301 gradually presses against the elastic force of the first compression spring and gradually slides backward on the heat sink 101. When the fan connecting plate 401 When the multiple fans on the fan connection plate 401 reach a location on the server body that requires enhanced heat dissipation, the sliding of the connection plate 103 is stopped, and the rectangular electromagnet is energized. The slide 301 is then fixed in that position. Subsequently, the operating lever 602 rotates counterclockwise continuously, causing the protrusion 603 to work with the second compression spring to make the slide 302 slide back and forth on the slide 301 at a high frequency. This allows the multiple fans on the fan connection plate 401 to continuously blow and move at a high frequency to a location on the server body that requires enhanced heat dissipation, thereby enhancing the heat dissipation effect.

[0028] The rectangular electromagnet is relatively long, which allows it to be fixed after the slide 301 has slid to any position, ensuring the normal operation of subsequent equipment.

[0029] See Figure 6 A schematic diagram of an embodiment for adjusting the high-frequency reciprocating sliding amplitude of the drive slider 302 is shown. Further,

[0030] The auxiliary plate 601 is slidably connected to the slide 301. The auxiliary plate 601 is provided with a plurality of protrusions 603, the thickness of which gradually increases from left to right. A second electric push rod capable of driving the auxiliary plate 601 to slide is fixedly connected to the slide 301.

[0031] Before sliding the connecting plate 103, first slide the rotating rod 602 along the slide 301, then move the protrusion 603 of appropriate height to the rear side of the slide rod 302, and then operate the rotating rod 602 from... Figure 6 The posture shown is rotated 90° clockwise, and different height protrusions 603 are selected to face the rear side of the slide rod 302. This allows the lever 602 to rotate counterclockwise in subsequent operations, thereby cooperating with the elastic force of the second compression spring to increase the sliding amplitude of the slide rod 302 during high-frequency sliding. Then, according to the usage requirements, the high-frequency reciprocating sliding amplitude of the slide rod 302 on the slide 301 can be adjusted to adjust the size of the enhanced cooling range and further ensure the enhanced heat dissipation effect.

[0032] See Figure 5-8 This diagram illustrates an embodiment of the invention that facilitates cleaning the underside of the multiple air vents 104 to ensure breathability. Further,

[0033] It also includes a stop 303 slidably connected to the slide rod 302, a cleaning brush 502 fixedly connected to the transmission seat 501, a first torsion spring fixedly connected between the transmission seat 501 and the slide rod 302, the stop 303 being able to abut against the rear side of the transmission seat 501, and a third electric push rod fixedly connected to the slide rod 302, which can drive the stop 303 to slide.

[0034] Under normal conditions, the stop block 303 rests against the rear side of the transmission seat 501 to ensure the transmission effect. When the operating connecting plate 103 is slid to a certain position and stabilized in that position, the operating stop block 303 can be slid backward a certain distance, thus creating a gap between the stop block 303 and the transmission seat 501. At this time, the transmission seat 501 is only maintained by the torsional force of the torsion spring. Sliding the connecting plate 103 downward at this time can cause the connecting plate 103 to gradually press the transmission seat 501 to rotate counterclockwise, thereby causing the stop block 303 to gradually contact the lower side of the connecting plate 103. In other words, by sliding the operating connecting plate 103 up and down repeatedly during this process, the stop block 303 can be used to brush a certain position on the lower side of the connecting plate 103 multiple times. By sliding the operating connecting plate 103 to different positions and repeating the above operation, the lower side of multiple vent holes 104 can be thoroughly cleaned to ensure the ventilation effect.

[0035] See Figure 5 The diagram illustrates an embodiment of the invention that further improves the cooling effect.

[0036] The fan connecting plate 401 is rotatably connected to the slide rod 302.

[0037] During the process of using multiple fans to blow air onto the lower side of the connecting plate 103, the operable fan connecting plate 401 can be rotated back and forth on the slide bar 302, thereby changing the blowing direction of the fans on the fan connecting plate 401, thus further improving the blowing effect on the lower side of the connecting plate 103 and further improving the cooling effect.

[0038] See Figure 5 , Figure 7 A schematic diagram of an embodiment of the present invention that facilitates the automatic rotation of the fan connecting plate 401 is shown. Further,

[0039] It also includes an arc-shaped protrusion 402 fixed to the fan connecting plate 401. The thickness of the arc-shaped protrusion 402 gradually increases from left to right. A mating rod 701 is slidably connected to the heat sink 101. A mating ball 702 is fixed to the mating rod 701. A third compression spring is fixed between the mating rod 701 and the heat sink 101. A second torsion spring is fixed between the sliding rod 302 and the fan connecting plate 401.

[0040] When it is necessary to drive the fan connecting plate 401 to rotate and then adjust the fan blowing mode, the slide 301 can be moved until the mating rod 701 abuts against the right side of the auxiliary plate 601. Then, the auxiliary plate 601 is operated to slide to the right, which gradually pushes the mating rod 701 to slide. This causes the mating ball 702 to gradually slide from the leftmost side of the arc-shaped protrusion 402 to the rightmost side. Since the thickness of the arc-shaped protrusion 402 gradually increases from left to right, the mating ball 702 can gradually push the fan connecting plate 401 to overcome the torsional force of the third torsion spring and rotate clockwise. This drives the fan connecting plate 401 to change its angle, thereby changing the fan orientation angle on the fan connecting plate 401 and further improving the subsequent cooling effect. The second torsion spring allows the slide 301 to continue sliding. After the arc-shaped protrusion 402 and the mating ball 702 are misaligned, the fan connecting plate 401 can automatically reset, allowing the equipment to automatically complete the reset work.

[0041] See Figure 5 , Figure 7 , Figure 9 A schematic diagram of an embodiment of the present invention, which facilitates the rotation of the fan connecting plate 401 at different positions, is shown. Further,

[0042] Multiple of the aforementioned mating rods 701 and mating balls 702 are provided.

[0043] The arrangement of multiple mating rods 701 and multiple mating balls 702 enables the fan connecting plate 401 to rotate after the slide 301 moves to multiple positions, thereby facilitating the rotation of the fan connecting plate 401 at different positions and further improving the subsequent cooling effect.

[0044] See Figure 6 A schematic diagram of an embodiment is shown, facilitating the contact rod 701 to rest against the right side of the auxiliary plate 601. Further,

[0045] The rotating rod 602 has inclined rods on both the front and rear sides.

[0046] When the slide 301 slides and drives the auxiliary plate 601 to move synchronously, when the auxiliary plate 601 moves to gradually contact a certain mating rod 701, the mating rod 701 will be gradually pressed by the inclined rod on one of the front and rear sides of the auxiliary plate 601. Then, the mating rod 701 gradually overcomes the elastic force of the third compression spring and slides on the heat sink 101 until the mating rod 701 abuts against the right side of the auxiliary plate 601. The inclined rod can ensure that multiple mating rods 701 can smoothly abut against the right side of the auxiliary plate 601, thus facilitating subsequent transmission work.

[0047] See Figure 9-10 A schematic diagram is shown illustrating an embodiment that facilitates further fixation of the entire device for heat dissipation. Further,

[0048] The heat sink 101 has multiple threaded holes.

[0049] The heat sink 101 can be fixed by screwing bolts into it, thereby fixing the device.

Claims

1. A server, characterized in that, The device includes a heat sink (101), a cooling groove (102) on the heat sink (101), a connecting plate (103) slidably connected to the heat sink (101), a plurality of vent holes (104) on the connecting plate (103), a slide (301) slidably connected to the heat sink (101), a transmission seat (501) connected to the slide (301), the transmission seat (501) being able to contact the lower end face of the vent holes (104), a fan connecting plate (401) connected to the slide (301), the fan connecting plate (401) being able to rotate about a virtual axis, and a first compression spring being fixedly connected between the slide (301) and the heat sink (101).

2. A server according to claim 1, characterized in that, It also includes a slide rod (302) that is slidably connected to the slide (301), and a transmission seat (501) is connected to the slide rod (302).

3. A server according to claim 2, characterized in that, It also includes an auxiliary plate (601) connected to the slide (301), a rotating rod (602) rotatably connected to the auxiliary plate (601), a protrusion (603) fixedly connected to the rotating rod (602), a second compression spring fixedly connected between the slide rod (302) and the slide (301), and a rectangular electromagnet fixedly connected to the heat sink (101), which can attract the slide (301).

4. A server according to claim 3, characterized in that, The auxiliary plate (601) is slidably connected to the carriage (301). The auxiliary plate (601) is provided with a plurality of protrusions (603), and the height of the plurality of protrusions (603) gradually increases from left to right.

5. A server according to claim 4, characterized in that, It also includes a stop (303) that is slidably connected to the slide rod (302), a cleaning brush (502) fixedly connected to the transmission seat (501), and a first torsion spring fixedly connected between the transmission seat (501) and the slide rod (302).

6. A server according to claim 5, characterized in that, The fan connecting plate (401) is rotatably connected to the slide rod (302).

7. A server according to claim 6, characterized in that, It also includes an arc-shaped protrusion (402) fixed to the fan connecting plate (401), the thickness of the arc-shaped protrusion (402) gradually increases from left to right, a mating rod (701) is slidably connected to the heat sink (101), a mating ball (702) is fixed to the mating rod (701), a third compression spring is fixed between the mating rod (701) and the heat sink (101), a second torsion spring is fixed between the slide rod (302) and the fan connecting plate (401), and the mating rod (701) can abut against the right side of the auxiliary plate (601).

8. A server according to claim 7, characterized in that, Multiple of the aforementioned mating rod (701) and mating ball (702) are provided.

9. A server according to claim 7, characterized in that, The auxiliary plate (601) is provided with inclined rods on both the front and rear sides.

10. A server according to claim 1, characterized in that, The heat sink (101) has multiple threaded holes.