Server protection device

By introducing a moving mechanism and worm gear transmission into the server protection device, the full coverage of the spray mechanism is achieved, solving the problem of limited range of movement of the existing device's nozzles, improving fire extinguishing efficiency and safety, and avoiding data loss and service interruption.

CN120268003BActive Publication Date: 2025-08-05INSPUR SUZHOU INTELLIGENT TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202510756735.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-06-06
Publication Date
2025-08-05
Estimated Expiration
2045-06-06

AI Technical Summary

Technical Problem

The water spray structure design of the existing server protection device can only cover both sides of the server. The range of movement of the nozzle is limited, and the fire extinguishing agent cannot be delivered to the fire source position quickly and effectively, resulting in delays in fire extinguishing timing and increasing the risk of server damage.

Method used

A protective device including a carrier frame, a moving mechanism, a spraying mechanism and a driving mechanism is designed to achieve all-round and multi-angle coverage of the spraying mechanism through the movement mechanism, and combines the worm and worm gear transmission and vibration damping mechanism to ensure that the spraying mechanism can quickly and accurately reach the fire point.

Benefits of technology

It realizes all-round fire extinguishing coverage of the space around the server, improves fire extinguishing efficiency, avoids dead ends of fire extinguishing, enhances the security of the server in the event of sudden fires, and prevents data loss and service interruption.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120268003B_ABST
    Figure CN120268003B_ABST
Patent Text Reader

Abstract

The present invention discloses a server protection device, which relates to the technical field of servers. The server protection device includes: a carrier frame, a motion mechanism, a spraying mechanism, and a driving mechanism. The carrier frame is provided with a placement table, on which the server is placed. The motion mechanism is provided on the carrier frame and is movable relative to the placement table. The spraying mechanism is connected to the motion mechanism and is located on the periphery of the placement table. The driving mechanism is provided on the carrier frame and is connected to the motion mechanism to drive the motion mechanism to rotate around the periphery of the placement table, and at the same time drive the spraying mechanism to move in the up and down directions. The server protection device according to the present invention achieves all-round and multi-angle fire extinguishing coverage of the space around the server, increases the range of motion of the spraying mechanism, improves the fire extinguishing effect of the protection device, enables the spraying mechanism to quickly and accurately reach the vicinity of the fire point, avoids delaying the fire extinguishing opportunity, and improves the safety of the server in the event of a sudden fire.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of servers, and particularly to a protection device for a server. Background Art

[0002] It is pointed out in the related art that the fire-proof server protection device still has obvious limitations in practical applications. The water spraying structure design of this device can only cover the two side areas of the server, and the moving range of the nozzles is limited and can only be adjusted in the up and down directions. This design defect causes that when a fire occurs in other parts of the server (such as the front, back or top), the nozzles cannot quickly and effectively deliver the fire extinguishing agent to the fire source position, thus delaying the fire extinguishing time and increasing the risk of damage to the server.

[0003] Moreover, due to the limited water spraying coverage, problems such as uneven fire extinguishing and slow response speed may occur, further affecting the overall fire-proof effect. This not only reduces the safety of the server equipment in case of a sudden fire, but may also cause serious data loss and service interruption consequences. Summary of the Invention

[0004] The present invention aims to at least solve one of the technical problems existing in the prior art. For this reason, the present invention provides a protection device for a server, which realizes all-round and multi-angle fire extinguishing coverage of the space around the server.

[0005] The protection device for a server according to the present invention includes: a carrier frame, on which a placement table is provided, and a server is placed on the placement table; a motion mechanism, which is arranged on the carrier frame and is movable relative to the placement table; a spraying mechanism, which is connected to the motion mechanism and is located on the periphery of the placement table; a driving mechanism, which is arranged on the carrier frame and is connected to the motion mechanism to drive the motion mechanism to move, so as to drive the spraying mechanism to rotate around the periphery of the placement table, and at the same time drive the spraying mechanism to move in the up and down directions.

[0006] According to the protection device of the present invention, by setting a motion mechanism that can drive the spraying mechanism to move in the up and down directions relative to the placement table and rotate circumferentially around the placement table, all-round and multi-angle fire extinguishing coverage of the space around the server is realized, the moving range of the spraying mechanism is increased, the fire extinguishing effect of the protection device is improved, the spraying mechanism can quickly and accurately reach near the ignition point, avoiding delaying the fire extinguishing time, improving the safety of the server in case of a sudden fire, and avoiding the occurrence of data loss and service interruption of the server.

[0007] In some feasible embodiments of the present invention, the motion mechanism includes: a transmission component, the transmission component is connected to the driving mechanism, the transmission component includes a first transmission member and a second transmission member, the first transmission member is connected to the driving shaft of the driving mechanism and is rotatable relative to the carrier, the second transmission member is movably disposed on the carrier, and the second transmission member meshes with the first transmission member; a first motion component, the first motion component is connected to the first transmission member, and the first transmission member drives the first motion component to rotate around the axis of the driving shaft; a second motion component, the second motion component is connected to the second transmission member, and the second transmission member drives the second motion component to move in the up and down direction.

[0008] In the above technical solution, the power transmission of the driving mechanism is realized by setting the transmission component, the circumferential rotation of the spraying mechanism around the server in the horizontal direction is realized by setting the first motion component, and the up and down movement of the spraying mechanism relative to the server in the vertical direction is realized by setting the second motion component. In short, the driving mechanism simultaneously drives the rotation of the first motion component and the lifting of the second motion component through the transmission component, so as to realize the composite motion of the spraying mechanism rotating around the server and moving up and down along the server, forming a spiral fire extinguishing path, improving the fire extinguishing efficiency, and avoiding fire extinguishing dead corners.

[0009] In some feasible embodiments of the present invention, the first transmission member is a worm, the second transmission member is a worm wheel, the worm extends in the up and down direction, the worm wheel meshes with the worm, the axis of the worm wheel is arranged perpendicular to the axis of the worm, the first motion component includes a motion carriage and a motion slider, the motion carriage is connected to the upper end of the worm, the lower end of the worm is connected to the driving mechanism, the motion carriage is rotatable around the axis of the worm, and the motion slider is slidably connected to the motion carriage in the up and down direction.

[0010] In the above technical solution, by setting the motion carriage connected to the first transmission member, when the first transmission member rotates, it drives the motion carriage to rotate around the axis of the first transmission member. The motion slider is slidably connected to the motion carriage, and the motion carriage plays a guiding role to prevent the spraying mechanism from loosening and detaching from the motion carriage during the movement. Moreover, the structure of the worm and worm wheel is compact, the operation is stable, the noise is low, and the bearing capacity is strong. The first transmission member is a worm and the second transmission member is a worm wheel.

[0011] In some feasible embodiments of the present invention, the second moving component includes: a moving link, the moving link extends along the radial direction of the worm, a first end of the moving link is connected to the worm gear, and the worm gear rotates to drive a second end of the moving link to move in the vertical direction; a moving ring, the second end of the moving link is connected to the moving ring, and the moving link moves to drive the moving ring to move in the vertical direction.

[0012] In the above technical solution, by providing a moving link connected to the second transmission member, while the second transmission member rotates, it drives the second end of the moving link to move in the vertical direction, thereby driving the moving ring to move in the vertical direction. In this way, through the cooperation of the worm and the worm gear, the rotational motion is converted into a linear motion, enabling the spraying mechanism to move smoothly in the vertical direction.

[0013] In some feasible embodiments of the present invention, a support is formed on the carrier, the first end of the moving link is rotatably connected to the support, a connecting rod is connected between the second end of the moving link and the moving ring, and the connecting rod is rotatably connected to both the moving link and the moving ring.

[0014] In some feasible embodiments of the present invention, there are multiple second moving components, and the multiple second moving components are arranged at intervals in the circumferential direction of the worm.

[0015] In the above technical solution, multiple second moving components are arranged in the circumferential direction of the worm, and each second moving component is connected to a worm gear. In this way, when the worm rotates, each worm gear rotates synchronously, so that the second rods of each moving link move synchronously in the vertical direction at the same time, ensuring that when the moving ring moves in the vertical direction, the plane where the moving ring is located is always in the same horizontal plane, thereby reducing the occurrence of failures and ensuring the stability and reliability of the moving mechanism.

[0016] In some feasible embodiments of the present invention, a sliding groove is formed on the moving ring, the sliding groove extends circumferentially along the moving ring to form a ring shape, a slidable sliding block is provided in the sliding groove, the spraying mechanism includes a water tank and a nozzle connected to the water tank, the sliding block is connected to the water tank, the nozzle is connected inside the moving slider in the radial direction of the worm, the water tank is connected outside the moving slider in the radial direction of the worm, and the water tank and the nozzle are connected by a connecting pipe.

[0017] In the above technical solution, the annular sliding groove is used to accommodate and guide the sliding block to slide within the sliding groove, achieving the position adjustability and path continuity of the spraying mechanism on the moving ring. Moreover, the water tank is connected to the sliding block, enabling the water tank to slide smoothly along the extension direction of the sliding groove, thereby achieving 360° coverage spraying of the server by the spraying mechanism.

[0018] In some feasible embodiments of the present invention, the protection device further includes: a vibration damping mechanism, which is provided between the carrier and the placement table. The vibration damping mechanism includes: a first vibration damping component and a second vibration damping component. The first vibration damping component includes: a first damping rod and a first elastic member. The first damping rod extends in the vertical direction and is connected between the carrier and the placement table. The first elastic member is sleeved on the first damping rod and is in abutting connection with both the carrier and the placement table. The second vibration damping component includes: a second damping rod, a second elastic member, a vibration damping slider, and a support swing arm. The second damping rod extends in the horizontal direction. One end of the second damping rod is connected to the carrier, and the other end of the second damping rod is connected to the vibration damping slider. The second elastic member is sleeved on the second damping rod and one end thereof is in abutting connection with the vibration damping slider. One end of the support swing arm is rotatably connected to the vibration damping slider, and the other end of the support swing arm is rotatably connected to the placement table.

[0019] In the above technical solution, by providing the vibration damping mechanism, the server is prevented from being directly affected by vibrations from the ground or the device itself, reducing the vibrations transmitted to the server, enhancing the reliability of the server during long-term operation, reducing the failure rate, improving the stability of the device, and achieving resistance to the impact of sudden movements of the moving mechanism.

[0020] In some feasible embodiments of the present invention, there are multiple first vibration damping components, and the multiple first vibration damping components are arranged at intervals; there are multiple second vibration damping components, and they are arranged in pairs. Each pair of second vibration damping components is symmetrically arranged and connected with a third elastic member, and the third elastic member is connected between the two vibration damping sliders.

[0021] In the above technical solution, the multiple first vibration damping components and the multiple second vibration damping components are both arranged at intervals, ensuring that the weight of the server is evenly distributed to each vibration damping component, avoiding the occurrence of uneven loading and tilting of the placement table or local stress concentration. The multiple vibration damping components can absorb vibrations from different directions and positions, improving the vibration absorption effect. Moreover, when one of the vibration damping components fails, the other vibration damping components can still continue to provide the vibration damping function.

[0022] In some feasible embodiments of the present invention, the protection device further includes: a box body, a water leakage hole is formed at the bottom of the box body, and a flame retardant coating is provided on the surface of the box body; a water supply mechanism, the water supply mechanism is connected to the spraying mechanism to supply water to the spraying mechanism; a control module, the control module is electrically connected to the spraying mechanism, the driving mechanism and the water supply mechanism.

[0023] In the above technical solution, by setting the water leakage hole, it is possible to prevent water accumulation during the fire extinguishing process, which may affect the operation of the equipment or cause secondary damage. The surface is provided with a flame retardant coating, which improves the fire resistance of the box body itself, delays the spread time of the flame, and gains precious time for fire extinguishing. The control module is electrically connected to the body of the spraying mechanism, the driving mechanism and the water supply mechanism, realizing the centralized control and intelligent scheduling of the protection device, making the protection device more intelligent.

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

[0025] In order to more clearly illustrate the embodiments of the present invention, the following will briefly introduce the drawings required for the embodiments. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.

[0026] Figure 1 Schematic diagram of a protection device for a server provided by an embodiment of the present invention;

[0027] Figure 2 For Figure 1 Schematic diagram of the internal structure of the protection device shown in;

[0028] Figure 3 For Figure 2 Schematic diagram of the moving mechanism and the vibration damping mechanism shown in;

[0029] Figure 4 For Figure 3 Schematic diagram of the moving mechanism shown in;

[0030] Figure 5 For Figure 3 Cross-sectional schematic diagram of the moving mechanism and the vibration damping mechanism shown in;

[0031] Figure 6 For Figure 3 Schematic diagram of the spraying mechanism shown in;

[0032] Figure 7 For Figure 5 Schematic diagram of the second vibration damping component shown in.

[0033] Among them, the above-mentioned drawings include the following reference numerals:

[0034] 100, protection device;

[0035] 1, carrier; 11, first carrier plate; 12, second carrier plate; 13, connecting vertical plate; 14, placement table; 15, support;

[0036] 2, motion mechanism;

[0037] 21, first motion component; 211, motion carriage; 2111, chute; 2112, carriage body; 2113, carriage base; 212, motion slider;

[0038] 22, second motion component; 221, motion link; 2211, first end; 2212, second end; 222, motion ring; 2221, sliding groove; 2222, sliding block; 223, connecting rod;

[0039] 23, worm; 24, worm gear; 241, fixed shaft;

[0040] 3, spraying mechanism; 31, water tank; 32, nozzle; 321, spraying holes; 33, connecting pipe;

[0041] 4, driving mechanism;

[0042] 5, damping mechanism;

[0043] 51, first damping component; 511, first damping rod; 512, first elastic member;

[0044] 52, second damping component; 521, second damping rod; 522, second elastic member; 523, damping slider; 524, supporting swing arm; 525, third elastic member; 526, damping seat; 53, limiting column;

[0045] 6, box body; 61, water leakage holes;

[0046] 200, server. Detailed implementation manners

[0047] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the protection scope of the present invention.

[0048] 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 invention 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. Therefore, it should not be construed as a limitation to the present invention. The terms "mounted", "connected" and "coupled" should be understood in a broad sense. For example, it may be a fixed connection, a detachable connection or an integral connection; it may be a mechanical connection or an electrical connection; it may be directly connected or indirectly connected through an intermediate medium, and it may be the communication inside two elements. The terms "parallel", "perpendicular", "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 a particular quantity (i.e., the limitations of the measurement system). For example, "parallel" includes absolute parallel and approximate parallel, where the acceptable deviation range of approximate parallel may be, for example, within 5° deviation; "perpendicular" includes absolute perpendicular and approximate perpendicular, where the acceptable deviation range of approximate perpendicular may also be, for example, within 5° deviation. "Equal" includes absolute equal and approximate equal, where the acceptable deviation range of approximate equal may be, for example, that the difference between the two equal ones is less than or equal to 5% of either one. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific situations.

[0049] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those of ordinary skill in the technical field to which this invention belongs; the terms used herein are only for the purpose of describing specific embodiments and are not intended to limit the present invention; the terms "comprising" and "having" and any variations thereof in the specification and claims of this invention and the above drawings description are intended to cover non-exclusive inclusion.

[0050] In the description of the embodiments of the present invention, technical terms such as "first", "second", etc. are only used to distinguish different objects and cannot be understood as indicating or implying relative importance or implicitly specifying the quantity, specific order or primary and secondary relationship of the indicated technical features. In the description of the embodiments of the present invention, the meaning of "plural" is more than two, unless otherwise specifically defined.

[0051] Reference to "embodiment" in this document means that the specific features, structures, or characteristics described in conjunction with the embodiment may be included in at least one embodiment of the present invention. The phrase appearing at various positions in the specification does not necessarily refer to the same embodiment, nor is it an independent or alternative embodiment mutually exclusive with other embodiments. Those skilled in the art will explicitly and implicitly understand that the embodiments described herein may be combined with other embodiments.

[0052] In the description of the embodiments of the present invention, the term "and / or" is merely a description of the association relationship of associated objects, indicating that there can be three relationships. For example, A and / or B can represent: A exists alone, A and B exist simultaneously, and B exists alone. In addition, the character " / " in this document generally represents an "or" relationship between the associated objects before and after.

[0053] In the description of the embodiments of the present invention, the term "plurality" refers to two or more (including two).

[0054] In the related art, it is pointed out that the fireproof server protection device still has obvious limitations in actual applications. The water spraying structure design of this device can only cover the two side areas of the server, and the moving range of the nozzles is limited and can only be adjusted in the up and down directions. This design defect causes that when a fire occurs in other parts of the server (such as the front, back, or top), the nozzles cannot quickly and effectively deliver the fire extinguishing agent to the fire source location, thus delaying the fire extinguishing opportunity and increasing the risk of damage to the server.

[0055] Moreover, due to the limited water spraying coverage, problems such as uneven fire extinguishing and slow response speed may occur, further affecting the overall fireproof effect. This not only reduces the safety of the server equipment in case of a sudden fire, but may also cause serious data loss and service interruption consequences.

[0056] Therefore, how to improve the fire extinguishing effect of the protection device has become an urgent issue to be solved.

[0057] Based on the above considerations, in order to improve the fire extinguishing effect of the protection device, the inventor has conducted in-depth research and designed a protection device for a server. The following refers to Figures 1 - 7 Describe the protection device for a server according to the embodiments of the present invention.

[0058] As Figures 1 - 7 shown, Figure 1 is a schematic diagram of a protection device for a server provided by an embodiment of the present invention; Figure 2 is Figure 1 a schematic diagram of the internal structure of the protection device shown in Figure 3 is Figure 2 a schematic diagram of the moving mechanism and the damping mechanism shown in Figure 4 is Figure 3Schematic diagram of the motion mechanism shown in; Figure 5 for Figure 3 A cross-sectional schematic diagram of the motion mechanism and the vibration reduction mechanism shown in ; Figure 6 for Figure 3 Schematic diagram of the spraying mechanism shown in ; Figure 7 for Figure 5 Schematic diagram of the second vibration damping assembly shown in .

[0059] The protection device 100 for the server 200 according to the embodiment of the present invention includes: a supporting frame 1 , a movement mechanism 2 , a spraying mechanism 3 and a driving mechanism 4 .

[0060] Specifically, a placement platform 14 is provided on the carrier 1, and a server 200 is placed on the placement platform 14. A motion mechanism 2 is provided on the carrier 1 and is movable relative to the placement platform 14. A spray mechanism 3 is connected to the motion mechanism 2 and is located around the placement platform 14. A driving mechanism 4 is provided on the carrier 1 and is connected to the motion mechanism 2 to drive the motion mechanism 2 to move and drive the spray mechanism 3 to rotate around the placement platform 14, while driving the spray mechanism 3 to move in the up and down directions. Therefore, compared with the problem of limited coverage of the nozzle 32 in the prior art, the protection device 100 of the server 200 in the embodiment of the present invention achieves all-round and multi-angle fire extinguishing coverage of the space around the server 200, improves the fire extinguishing effect of the protection device 100, improves the safety of the server 200 in the event of a sudden fire, and avoids data loss and service interruption of the server 200.

[0061] It can be understood that the carrier 1 serves as the basic support structure for other components. The carrier 1 provides a stable and reliable assembly area for other components. A placement table 14 is provided on the upper part of the carrier 1, and the placement table 14 is used to stably place the server 200. Both the carrier 1 and the placement table 14 have flame retardant properties to ensure the structural integrity in case of a fire. The motion mechanism 2 is installed on the carrier 1, and the carrier 1 provides a reliable assembly position for the motion mechanism 2. The motion mechanism 2 is movable relative to the placement table 14, that is, the motion mechanism 2 can move in the up and down direction relative to the placement table 14, and at the same time, the motion mechanism 2 can move in the left and right directions and the front and back directions relative to the placement table 14. Or, the motion mechanism 2 can move to any position in the three-dimensional space relative to the placement table 14, so that the spraying mechanism 3 connected to the motion mechanism 2 can move to any position in the three-dimensional space, increasing the freedom of movement of the spraying mechanism 3 and achieving an all-round and multi-angle fire extinguishing coverage of the space around the server 200. The spraying mechanism 3 is located on the periphery of the placement table 14 (that is, the spraying mechanism 3 is located on the periphery of the server 200), thus achieving an all-round fire extinguishing coverage of the server 200. The driving mechanism 4 is installed on the carrier 1, and the driving mechanism 4 drives the motion mechanism 2 to drive the spraying mechanism 3 to rotate circumferentially around the server 200 and move in the up and down direction at the same time, so that the spraying mechanism 3 can quickly and accurately reach near the fire point, avoiding delaying the fire extinguishing opportunity.

[0062] For example, as shown in Figure 2 and Figure 3 the carrier 1 has a first carrier plate 11, a second carrier plate 12 and a connecting vertical plate 13. The first carrier plate 11 and the second carrier plate 12 are arranged at intervals in the up and down direction. The connecting vertical plate 13 is connected between the first carrier plate 11 and the second carrier plate 12. The placement table 14 is installed on the second carrier plate 12, and the motion mechanism 2 is installed on the first carrier plate 11. While the motion mechanism 2 is movable in the up and down direction relative to the placement table 14, it can rotate circumferentially around the placement table 14. The driving mechanism 4 is arranged on the first carrier plate 11 and connected to the motion mechanism 2. The driving mechanism 4 drives the motion mechanism 2 to move. The motion mechanism 2 drives the spraying mechanism 3 to be movable in the up and down direction relative to the placement table 14 and rotate circumferentially around the placement table 14 at the same time, achieving an all-round and multi-angle fire extinguishing coverage of the space around the server 200.

[0063] According to the protection device 100 of the embodiments of the present invention, by providing a motion mechanism 2 that can drive the spraying mechanism 3 to move in the vertical direction relative to the placement table 14 and rotate circumferentially around the placement table 14, all-round and multi-angle fire extinguishing coverage of the space around the server 200 is achieved, the movement range of the spraying mechanism 3 is increased, the fire extinguishing effect of the protection device 100 is improved, enabling the spraying mechanism 3 to quickly and accurately reach near the fire point, avoiding delaying the fire extinguishing opportunity, enhancing the safety of the server 200 in case of a sudden fire, and preventing data loss and service interruption of the server 200.

[0064] In any of the embodiments of the present invention, the motion mechanism 2 includes: a transmission component, a first motion component 21, and a second motion component 22. The transmission component is connected to the driving mechanism 4. The transmission component includes a first transmission member and a second transmission member. The first transmission member is connected to the driving shaft of the driving mechanism 4 and is rotatable relative to the carrier 1. The second transmission member is movably disposed on the carrier 1. The second transmission member meshes with the first transmission member. The first motion component 21 is connected to the first transmission member. The first transmission member drives the first motion component 21 to rotate around the axis of the driving shaft. The second motion component 22 is connected to the second transmission member. The second transmission member drives the second motion component 22 to move in the vertical direction. Thus, by providing the transmission component, the power transmission of the driving mechanism 4 is achieved. By providing the first motion component 21, the spraying mechanism 3 is rotated circumferentially around the server 200 in the horizontal direction. By providing the second motion component 22, the spraying mechanism 3 is moved up and down relative to the server 200 in the vertical direction. In short, the driving mechanism 4 simultaneously drives the first motion component 21 to rotate and the second motion component 22 to lift through the transmission component, thereby realizing the combined motion of the spraying mechanism 3 rotating around the server 200 and moving up and down along the server 200, forming a spiral fire extinguishing path, improving the fire extinguishing efficiency, and avoiding fire extinguishing dead corners.

[0065] Refer to Figure 3 and Figure 4 As shown, it can be understood that the first transmission member is connected to the driving shaft of the driving mechanism 4. The first transmission member and the driving shaft are arranged coaxially, and the first transmission member is rotatable around the axis. The second transmission member is mounted on the first carrier plate 11. The second transmission member meshes with the first transmission member. The first motion component 21 is connected to the first transmission member. The first motion component 21 rotates around the axis of the driving shaft together with the first transmission member, realizing the rotational motion of the spraying mechanism 3 in the horizontal direction (i.e., rotating circumferentially around the server 200). The second motion component 22 is connected to the second transmission member. The second transmission member drives the second motion component 22 to move in the vertical direction, realizing the movement of the spraying mechanism 3 in the vertical direction.

[0066] In any embodiment of the present invention, the first transmission member is a worm 23, the second transmission member is a worm wheel 24, the worm 23 extends in the up and down directions, the worm wheel 24 is engaged with the worm 23, the axis of the worm wheel 24 and the axis of the worm 23 are arranged perpendicular to each other, the first motion component 21 includes a motion slide 211 and a motion slider 212, the motion slide 211 is connected to the upper end of the worm 23, the lower end of the worm 23 is connected to the driving mechanism 4, the motion slide 211 is rotatable around the axis of the worm 23, and the motion slider 212 is slidably connected to the motion slide 211 in the up and down directions. Therefore, by setting a moving slide 211 connected to the first transmission member, the first transmission member rotates and drives the moving slide 211 to rotate around the axis of the first transmission member. The moving slider 212 is slidably connected to the moving slide 211, and the moving slide 211 plays a guiding role to prevent the spraying mechanism 3 from loosening and detaching from the moving slide 211 during movement. In addition, the worm gear 24 and the worm 23 have a compact structure, stable operation, low noise, and strong load-bearing capacity. The first transmission member is the worm 23, and the second transmission member is the worm gear 24.

[0067] Reference Figure 4 As shown, it can be understood that the first transmission member is a worm 23, which extends in the up and down directions, and the second transmission member is a worm wheel 24, which meshes with the worm 23, and the axis of the worm wheel 24 extends in the horizontal direction, that is, the axis of the worm wheel 24 and the axis of the worm 23 are arranged perpendicular to each other, the moving slide 211 is connected to the upper end of the worm 23, and the driving shaft of the driving mechanism 4 is connected to the lower end of the worm 23, and the moving slide 211 rotates synchronously with the worm 23 around the central axis of the worm 23. The moving slide 211 includes a slide base 2113 and a slide body 2112, the slide base 2113 extends in the horizontal direction, the slide body 2112 is connected to both ends of the slide base 2113 in the length direction, the slide body 2112 extends in the vertical direction, and a slide groove 2111 extending in the vertical direction is formed on the slide body 2112, and the slider is movably arranged in the slide groove 2111.

[0068] In other embodiments, the slide base 2113 may include multiple connection ends, which are evenly spaced in the circumferential direction of the placement table 14, and a slide body 2112 is provided on each connection end. In this way, a spraying mechanism 3 can be provided on each slide body 2112, thereby improving the fire extinguishing effect of the protection device 100.

[0069] It should be noted that the transmission mode of the transmission assembly includes but is not limited to the above-mentioned worm wheel 24 and worm 23 transmission.

[0070] In any embodiment of the present invention, the second moving component 22 includes a moving link 221 and a moving ring 222. The moving link 221 extends along the radial direction of the worm 23. The first end 2211 of the moving link 221 is connected to the worm gear 24. The worm gear 24 rotates to drive the second end 2212 of the moving link 221 to move in the up and down direction. The second end 2212 of the moving link 221 is connected to the moving ring 222. The moving link 221 moves to drive the moving ring 222 to move in the up and down direction. Thus, by providing the moving link 221 connected to the second transmission member, when the second transmission member rotates, it drives the second end 2212 of the moving link 221 to move in the up and down direction, thereby driving the moving ring 222 to move in the up and down direction. In this way, through the cooperation of the worm gear 24 and the worm 23, the rotational motion is converted into a linear motion, enabling the spraying mechanism 3 to move smoothly in the up and down direction.

[0071] Referring to Figure 4 and Figure 5 As shown, it can be understood that the moving link 221 includes a first end 2211 and a second end 2212. The first end 2211 is fixedly connected to the worm gear 24 through a fixed shaft 241. In this way, when the worm 23 rotates, it drives the worm gear 24 to rotate around the axis of the fixed shaft 241. The fixed shaft 241 drives the moving link 221 to rotate around the axis of the fixed shaft 241. At this time, the second end 2212 of the moving link 221 rotates around the axis of the fixed shaft 241, thereby causing the moving ring 222 to move in the up and down direction.

[0072] In any embodiment of the present invention, a support 15 is formed on the carrier 1. The first end 2211 of the moving link 221 is rotatably connected to the support 15. A connecting rod 223 is connected between the second end 2212 of the moving link 221 and the moving ring 222. The connecting rod 223 is rotatably connected to both the moving link 221 and the moving ring 222. Referring to Figure 4 and Figure 5 As shown, it can be understood that a support 15 is formed on the carrier 1. A through hole is formed on the support 15. The fixed shaft 241 passes through the through hole. Two connecting arms are formed at the first end 2211 of the moving link 221. The fixed shaft 241 is connected between the two connecting arms. In this way, the second end 2212 of the moving link 221 realizes movement in the vertical direction under the drive of the worm gear 24; a connecting rod 223 is connected between the second end 2212 of the moving link 221 and the moving ring 222. One end of the connecting rod 223 is rotatably connected to the second end 2212 of the moving link 221, and the other end of the connecting rod 223 is rotatably connected to the moving ring 222. In this way, the moving ring 222 is realized to always move in a straight line in the vertical direction.

[0073] In any embodiment of the present invention, the second motion components 22 include a plurality of them, and the plurality of second motion components 22 are arranged at intervals in the circumferential direction of the worm 23. It can be understood that a plurality of second motion components 22 are arranged in the circumferential direction of the worm 23, and each second motion component 22 is connected to a worm gear 24. Thus, when the worm 23 rotates, each worm gear 24 rotates synchronously, so that the second rods of each motion link 221 move synchronously in the vertical direction at the same time, ensuring that when the motion ring 222 moves in the up and down direction, the plane where the motion ring 222 is located is always in the same horizontal plane, thereby reducing the occurrence of failures and ensuring the stability and reliability of the motion mechanism 2.

[0074] Referring to Figure 4 and Figure 5 As shown, the second motion components 22 include three, and the three second motion components 22 are evenly arranged at intervals in the circumferential direction of the worm 23. In this way, it helps to balance the mechanical load of the motion mechanism 2, reduce the wear and failure of individual components, extend the service life of the motion mechanism 2, and moreover, the three-point symmetric layout is more stable, providing better structural support to prevent the inclination or damage of the motion ring 222 caused by eccentric load. Even if one of the second motion components 22 fails, the other two can still maintain the movement of the motion ring 222, further improving the safety.

[0075] In any embodiment of the present invention, a sliding groove 2221 is formed on the motion ring 222. The sliding groove 2221 extends in a circular shape along the circumferential direction of the motion ring 222. A slidable sliding block 2222 is provided in the sliding groove 2221. The spraying mechanism 3 includes a water tank 31 and a spray head 32 communicated with the water tank 31. The sliding block 2222 is connected to the water tank 31. The spray head 32 is connected to the inner side of the motion slider 212 in the radial direction of the worm 23, and the water tank 31 is connected to the outer side of the motion slider 212 in the radial direction of the worm 23. The water tank 31 and the spray head 32 are communicated through a connecting pipe 33. Thus, the circular sliding groove 2221 is used to accommodate and guide the sliding block 2222 to slide in the sliding groove 2221, realizing the position adjustability and path continuity of the spraying mechanism 3 on the motion ring 222. Moreover, the water tank 31 is connected to the sliding block 2222, enabling the water tank 31 to slide smoothly along the extension direction of the sliding groove 2221, realizing the 360° coverage spraying of the spraying mechanism 3 on the server 200.

[0076] Referring to Figure 3 and Figure 4As shown, the sliding groove 2221 extends circumferentially along the moving ring 222 in a ring shape. There are two sliding blocks 2222, and both of the two sliding blocks 2222 are arranged in the sliding groove 2221. There are two spraying mechanisms 3. Each spraying mechanism 3 includes a water tank 31 and a nozzle 32 communicated with the water tank 31. Each sliding block 2222 is correspondingly connected to a water tank 31. The nozzle 32 is connected to the inner side of the moving slider 212, and the water tank 31 is connected to the outer side of the moving slider 212. The water tank 31 and the nozzle 32 are communicated through a connecting pipe 33. The nozzle 32 is formed in an arc shape, and a plurality of spraying holes 321 are formed on the nozzle 32 for spraying fire extinguishing materials towards the server 200. A pump body is arranged in the water tank 31 to drive the fire extinguishing materials to move towards the spraying holes 321.

[0077] Here, the fire extinguishing materials can be water, dry powder, etc.

[0078] In summary, through the cooperation of the first moving component 21 and the second moving component 22, the spraying mechanism 3 realizes the compound movement of rotating around the server 200 and moving up and down along the server 200, forming a spiral fire extinguishing path, improving the fire extinguishing efficiency, and avoiding fire extinguishing dead corners.

[0079] In any embodiment of the present invention, the protection device 100 further includes: a vibration damping mechanism 5. The vibration damping mechanism 5 is arranged between the carrier 1 and the placement table 14. The vibration damping mechanism 5 includes: a first vibration damping component 51 and a second vibration damping component 52. The first vibration damping component 51 includes: a first damping rod 511 and a first elastic member 512. The first damping rod 511 extends in the up and down direction and is connected between the carrier 1 and the placement table 14. The first elastic member 512 is sleeved on the first damping rod 511 and is in abutting connection with both the carrier and the placement table 14.

[0080] The second vibration damping component 52 includes: a second damping rod 521, a second elastic member 522, a vibration damping slider 523 and a support swing arm 524. The second damping rod 521 extends in the horizontal direction. One end of the second damping rod 521 is connected to the carrier 1, and the other end of the second damping rod 521 is connected to the vibration damping slider 523. The second elastic member 522 is sleeved on the second damping rod 521 and one end thereof is in abutting connection with the vibration damping slider 523. One end of the support swing arm 524 is rotatably connected to the vibration damping slider 523, and the other end of the support swing arm 524 is rotatably connected to the placement table 14. Thus, by arranging the vibration damping mechanism 5, the server 200 is prevented from being directly affected by the vibration from the ground or the equipment itself, the vibration transmitted to the server 200 is reduced, the reliability of the long-term operation of the server 200 is enhanced, the failure rate is reduced, the stability of the equipment is improved, and the impact of the sudden movement of the moving mechanism 2 is resisted.

[0081] Refer to Figure 3 and Figure 5As shown, it can be understood that the placement table 14 and the second carrier plate 12 are arranged at intervals in the up and down directions. The vibration damping mechanism 5 is located between the placement table 14 and the second carrier plate 12. The first damping rod 511 extends in the up and down directions. The upper end of the first damping rod 511 is connected to the placement table 14, and the lower end of the first damping rod 511 is connected to the second carrier plate 12. The first elastic member 512 is sleeved on the first damping rod 511. The upper end of the first elastic member 512 abuts against the placement table 14, and the lower end of the first elastic member 512 abuts against the second carrier plate 12. A limiting column 53 is also connected between the placement table 14 and the second carrier plate 12 to prevent the placement table 14 from having a large range of movement in the up and down directions and causing damage to the server 200, ensuring the safety and stability of the server 200.

[0082] In any embodiment of the present invention, there are multiple first vibration damping components 51, and the multiple first vibration damping components 51 are arranged at intervals; there are multiple second vibration damping components 52, and they are arranged in pairs, and each pair of second vibration damping components 52 is symmetrically arranged and connected with a third elastic member 525, and the third elastic member 525 is connected between two damping sliders 523. Thus, the multiple first vibration damping components 51 and the multiple second vibration damping components 52 are both arranged at intervals, which ensures that the weight of the server 200 is evenly distributed to each vibration damping component, avoiding the occurrence of the situation of the placement table 14 being unevenly loaded and tilted or local stress concentration. The multiple vibration damping components can absorb vibrations from different directions and positions, improving the vibration absorption effect. And when one of the vibration damping components fails, the other vibration damping components can still continue to provide the vibration damping function.

[0083] Referring to Figure 3 and Figure 5 As shown, it can be understood that there are four first vibration damping components 51, and the four vibration damping components are arranged at intervals at the four corners of the placement table 14. There are four second vibration damping components 52, and the four second vibration damping components 52 are arranged in pairs, as Figure 7 shown, that is, two groups of second vibration damping components 52. The two second vibration damping components 52 in each group are symmetrically arranged, and a third elastic member 525 is connected between the two second vibration damping components 52 in each group. The two ends of the third elastic member 525 are respectively connected to a damping slider 523. Each second vibration damping component 52 includes a damping seat. One end of the second elastic member 522 is connected to the damping slider 523, and the other end of the second elastic member 522 is connected to the damping seat 526.

[0084] In any embodiment of the present invention, the protection device 100 further includes: a box body 6, a water supply mechanism, and a control module. A water leakage hole 61 is formed at the bottom of the box body 6, and a flame retardant coating is provided on the surface of the box body 6. The water supply mechanism is connected to the spraying mechanism 3 to supply water to the spraying mechanism 3. The control module is electrically connected to the spraying mechanism 3, the driving mechanism 4, and the water supply mechanism. Thus, by providing the water leakage hole 61, water accumulation during the fire extinguishing process is prevented, which may affect the operation of the equipment or cause secondary damage. The surface is provided with a flame retardant coating, which improves the fire resistance of the box body 6 itself, delays the spread time of the flame, and gains valuable time for fire extinguishing. The control module is electrically connected to the pump body of the spraying mechanism 3, the driving mechanism 4, and the water supply mechanism, realizing the centralized control and intelligent scheduling of the protection device 100, making the protection device 100 more intelligent.

[0085] Furthermore, a smoke sensor, a temperature sensor, an infrared sensor, etc. can be provided inside the box body 6 to identify the position of the fire source and send signals to the control module. A water level sensor is provided inside the water tank 31 to monitor the water volume in the water tank 31 to ensure that the spraying mechanism 3 has sufficient water volume to spray the fire source. Multiple cameras can be provided inside the box body 6, and an AI module is provided inside the control module to judge the fire distribution through image recognition or thermal imaging technology and optimize the spraying path. An alarm is provided on the box body 6. When the signals monitored by the smoke sensor, the temperature sensor, and the infrared sensor exceed the set value, signals are sent to the alarm to start the alarm to remind the operator to pay attention to whether the environment where the server 200 is located is safe.

[0086] Next, reference will be made to Figures 1 - 7 Describe the protection device 100 of the server 200 according to a specific embodiment of the present invention.

[0087] Refer to Figures 1 - 7 As shown, the protection device 100 of the server 200 includes: a carrier 1, a motion mechanism 2, a spraying mechanism 3, a driving mechanism 4, a vibration damping mechanism 5, a box body 6, a water supply mechanism, and a control module.

[0088] Specifically, a water leakage hole 61 is formed at the bottom of the box body 6. A flame retardant coating is provided on the surface of the box body 6. The water supply mechanism is connected to the spraying mechanism 3 to supply water to the spraying mechanism 3. The control module is electrically connected to the pump body of the spraying mechanism 3, the driving mechanism 4 and the water supply mechanism. The carrier 1 is located inside the box body 6. The carrier 1 has a first carrier plate 11, a second carrier plate 12 and a connecting vertical plate 13. The first carrier plate 11 and the second carrier plate 12 are arranged at intervals in the up and down direction. The connecting vertical plate 13 is connected between the first carrier plate 11 and the second carrier plate 12. The placing table 14 is installed on the second carrier plate 12. The moving mechanism 2 is installed on the first carrier plate 11. While the moving mechanism 2 is movable in the up and down direction relative to the placing table 14, it can rotate around the circumference of the placing table 14. The driving mechanism 4 is arranged on the first carrier plate 11 and connected to the moving mechanism 2. The driving mechanism 4 drives the moving mechanism 2 to move. While the moving mechanism 2 drives the spraying mechanism 3 to be movable in the up and down direction relative to the placing table 14, it can rotate around the circumference of the placing table 14, achieving all-round and multi-angle fire extinguishing coverage of the space around the server 200.

[0089] The first transmission member is connected to the drive shaft of the driving mechanism 4. The first transmission member is arranged coaxially with the drive shaft, and the first transmission member can rotate around the axis. The second transmission member is installed on the first carrier plate 11. The second transmission member meshes with the first transmission member. The first moving component 21 is connected to the first transmission member. The first moving component 21 rotates around the axis of the drive shaft together with the first transmission member, realizing the rotational movement of the spraying mechanism 3 in the horizontal direction (i.e., rotating around the circumference of the server 200). The second moving component 22 is connected to the second transmission member. The second transmission member drives the second moving component 22 to move in the up and down direction, realizing the movement of the spraying mechanism 3 in the up and down direction.

[0090] The first transmission member is a worm 23. The worm 23 extends in the up and down direction. The second transmission member is a worm wheel 24. The worm wheel 24 meshes with the worm 23. The axis of the worm wheel 24 extends in the horizontal direction, that is, the axis of the worm wheel 24 is arranged perpendicular to the axis of the worm 23. The moving carriage 211 is connected to the upper end of the worm 23. The drive shaft of the driving mechanism 4 is connected to the lower end of the worm 23. The moving carriage 211 rotates synchronously with the worm 23 around the central axis of the worm 23. The moving carriage 211 includes a carriage base 2113 and a carriage body 2112. The carriage base 2113 extends in the horizontal direction. The carriage body 2112 is connected to both ends of the carriage base 2113 in the length direction. The carriage body 2112 extends in the vertical direction. A chute 2111 extending in the vertical direction is formed on the carriage body 2112. The slider is movably arranged in the chute 2111.

[0091] The moving link 221 includes a first end 2211 and a second end 2212. The first end 2211 is fixedly connected to the worm gear 24 through a fixed shaft 241. In this way, when the worm 23 rotates, it drives the worm gear 24 to rotate around the axis of the fixed shaft 241. The fixed shaft 241 drives the moving link 221 to rotate around the axis of the fixed shaft 241. At this time, the second end 2212 of the moving link 221 rotates around the axis of the fixed shaft 241, so that the moving ring 222 moves in the up and down directions.

[0092] A support 15 is formed on the carrier 1, and a through hole is formed on the support 15. The fixed shaft 241 is inserted into the through hole. Two connecting arms are formed at the first end 2211 of the moving link 221, and the fixed shaft 241 is connected between the two connecting arms. In this way, the second end 2212 of the moving link 221 realizes its movement in the vertical direction under the drive of the worm gear 24; a connecting rod 223 is connected between the second end 2212 of the moving link 221 and the moving ring 222. One end of the connecting rod 223 is rotatably connected to the second end 2212 of the moving link 221, and the other end of the connecting rod 223 is rotatably connected to the moving ring 222. In this way, the moving ring 222 is realized to always move in a straight line in the vertical direction.

[0093] There are three second moving components 22, and the three second moving components 22 are evenly spaced in the circumferential direction of the worm 23. The sliding groove 2221 extends circumferentially along the moving ring 222 to form a ring shape. There are two sliding blocks 2222, and both of the two sliding blocks 2222 are arranged in the sliding groove 2221. There are two spraying mechanisms 3, and each spraying mechanism 3 includes a water tank 31 and a nozzle 32 communicated with the water tank 31. Each sliding block 2222 is correspondingly connected to a water tank 31. The nozzle 32 is connected to the inner side of the moving slider 212, and the water tank 31 is connected to the outer side of the moving slider 212. The water tank 31 and the nozzle 32 are communicated through a connecting pipe 33. The nozzle 32 is formed in an arc shape, and a plurality of spraying holes 321 are formed on the nozzle 32 for spraying fire extinguishing materials onto the server 200. A pump body is arranged in the water tank 31 to drive the fire extinguishing materials to move towards the spraying holes 321.

[0094] The placing table 14 and the second bearing plate 12 are arranged at intervals in the up and down directions. The damping mechanism 5 is located between the placing table 14 and the second bearing plate 12. The first damping rod 511 extends in the up and down directions. The upper end of the first damping rod 511 is connected to the placing table 14, and the lower end of the first damping rod 511 is connected to the second bearing plate 12. The first elastic member 512 is sleeved on the first damping rod 511. The upper end of the first elastic member 512 abuts against the placing table 14, and the lower end of the first elastic member 512 abuts against the second bearing plate 12. A limiting column 53 is also connected between the placing table 14 and the second bearing plate 12 to prevent the placing table 14 from having a large range of movement in the up and down directions and causing damage to the server 200, ensuring the safety and stability of the server 200.

[0095] The first damping component 51 includes four, and the four damping components are arranged at the four corners of the placement table 14 at intervals. The second damping component 52 includes four, and the four second damping components 52 are arranged in pairs, that is, two groups of second damping components 52. The two second damping components 52 in each group are symmetrically arranged, and a third elastic member 525 is connected between the two second damping components 52 in each group. Both ends of the third elastic member 525 are respectively connected to a damping slider 523. Each second damping component 52 includes a damping seat. One end of the second elastic member 522 is connected to the damping slider 523, and the other end of the second elastic member 522 is connected to the damping seat 526.

[0096] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the claims and their equivalents.

Claims

1. A server protection device, characterized in that: include: A carrier frame (1), wherein a placement platform (14) is provided on the carrier frame (1), and a server (200) is placed on the placement platform (14); A motion mechanism (2), the motion mechanism (2) being arranged on the carrier (1) and movable relative to the placement platform (14); A spraying mechanism (3), the spraying mechanism (3) is connected to the motion mechanism (2) and is located on the peripheral side of the placement platform (14); A driving mechanism (4), the driving mechanism (4) being arranged on the carrier (1) and connected to the motion mechanism (2), so as to drive the motion mechanism (2) to move the spraying mechanism (3) to rotate around the circumference of the placement table (14), and at the same time drive the spraying mechanism (3) to move in the up and down directions; The motion mechanism (2) comprises: a transmission assembly, the transmission assembly being connected to the drive mechanism (4), the transmission assembly comprising a first transmission member and a second transmission member, the first transmission member being connected to a drive shaft of the drive mechanism (4) and being rotatable relative to the carrier (1), the second transmission member being movably disposed on the carrier (1), the second transmission member being engaged with the first transmission member; a first motion component (21), the first motion component (21) being connected to the first transmission member, the first transmission member driving the first motion component (21) to rotate around the axis of the drive shaft; A second motion component (22), wherein the second motion component (22) is connected to the second transmission member, and the second transmission member drives the second motion component (22) to move in an up-down direction, The first transmission member is a worm (23), and the second transmission member is a worm wheel (24). The worm (23) extends in an up-down direction. The worm wheel (24) is engaged with the worm (23). The axis of the worm wheel (24) and the axis of the worm (23) are arranged perpendicular to each other. The first motion component (21) includes a motion slide (211) and a motion slider (212). The motion slide (211) is connected to the upper end of the worm (23), and the lower end of the worm (23) is connected to the driving mechanism (4). The motion slide (211) is rotatable around the axis of the worm (23), and the motion slider (212) is slidably connected to the motion slide (211) in an up-down direction.

2. The server protection device according to claim 1, characterized in that: The second motion component (22) comprises: a motion connecting rod (221), the motion connecting rod (221) extending in a radial direction of the worm (23), the first end (2211) of the motion connecting rod (221) being connected to the worm wheel (24), and the worm wheel (24) rotating to drive the second end (2212) of the motion connecting rod (221) to move in an up-down direction; A motion ring (222), wherein the second end (2212) of the motion connecting rod (221) is connected to the motion ring (222), and the motion connecting rod (221) moves to drive the motion ring (222) to move in an up-down direction.

3. The server protection device according to claim 2, characterized in that: A support (15) is formed on the carrier (1); a first end (2211) of the motion link (221) is rotatably connected to the support (15); a connecting rod (223) is connected between the second end (2212) of the motion link (221) and the motion ring (222); and the connecting rod (223) is rotatably connected to both the motion link (221) and the motion ring (222).

4. The server protection device according to claim 3, characterized in that: The second motion components (22) include a plurality of second motion components (22), and the plurality of second motion components (22) are arranged at intervals in the circumferential direction of the worm (23).

5. The server protection device according to claim 2, characterized in that: A sliding groove (2221) is formed on the motion ring (222), and the sliding groove (2221) extends in a ring shape along the circumference of the motion ring (222). A sliding block (2222) is provided in the sliding groove (2221). The spraying mechanism (3) comprises a water tank (31) and a spray head (32) connected to the water tank (31). The sliding block (2222) is connected to the water tank (31). The spray head (32) is connected to the inner side of the motion slider (212) in the radial direction of the worm (23). The water tank (31) is connected to the outer side of the motion slider (212) in the radial direction of the worm (23). The water tank (31) and the spray head (32) are connected via a connecting pipe (33).

6. The server protection device according to claim 1, characterized in that: Also includes: A vibration damping mechanism (5), the vibration damping mechanism (5) being arranged between the carrier (1) and the placement platform (14), the vibration damping mechanism (5) comprising: a first vibration damping component (51) and a second vibration damping component (52), The first vibration damping assembly (51) includes: a first damping rod (511) and a first elastic member (512), wherein the first damping rod (511) extends in an up-down direction and is connected between the carrier (1) and the placement platform (14), and the first elastic member (512) is sleeved on the first damping rod (511) and is in contact with and connected between the carrier (1) and the placement platform (14); The second vibration damping assembly (52) includes: a second damping rod (521), a second elastic member (522), a vibration damping slider (523) and a support swing arm (524). The second damping rod (521) extends in a horizontal direction. One end of the second damping rod (521) is connected to the supporting frame (1), and the other end of the second damping rod (521) is connected to the vibration damping slider (523). The second elastic member (522) is sleeved on the second damping rod (521) and one end is abutted and connected to the vibration damping slider (523). One end of the support swing arm (524) is rotatably connected to the vibration damping slider (523), and the other end of the support swing arm (524) is rotatably connected to the placement table (14).

7. The server protection device according to claim 6, characterized in that: The first vibration damping assembly (51) comprises a plurality of first vibration damping assemblies (51), and the plurality of first vibration damping assemblies (51) are arranged at intervals; The second vibration damping components (52) include a plurality of components, which are arranged in groups of two. Each group of the second vibration damping components (52) is symmetrically arranged and connected to a third elastic member (525). The third elastic member (525) is connected between the two vibration damping sliders (523).

8. The server protection device according to any one of claims 1 to 7, characterized in that: Also includes: A box body (6), wherein a water leakage hole (61) is formed at the bottom of the box body (6), and a flame retardant coating is provided on the surface of the box body (6); a water supply mechanism, the water supply mechanism being connected to the spray mechanism (3) to supply water to the spray mechanism (3); A control module, wherein the control module is electrically connected to the spraying mechanism (3), the driving mechanism (4) and the water supply mechanism.