Server protection device control system
By designing shock-absorbing components and detection and control components for the server protection device, the problem of lack of external protection for big data servers during transportation or dynamic environments is solved, intelligent anti-impact protection for the server is achieved, and the stability and safety of the circuit are ensured.
Patent Information
- Application Number
- CN202510979804.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-16
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2045-07-16
AI Technical Summary
Big data servers lack effective external protection devices during transportation or in dynamic environments and are easily damaged by external shock or vibration, affecting circuit stability and data security.
A server protection device was designed, consisting of a protective housing, a shock-absorbing assembly, and a detection and control assembly. The shock-absorbing assembly, through the coordinated action of a connecting rod swing assembly and an elastic buffer assembly, absorbs impact energy and protects the server. The detection and control assembly, using sensors and a central processing unit, monitors the environment in real time and adjusts the protection strategy.
It significantly improves the server's impact resistance during transportation or dynamic environments, ensures circuit stability and security, and realizes intelligent protection management.
Smart Images

Figure CN120482537B_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of server technology, and in particular to a server protection device control system. Background Art
[0002] In the field of big data servers, to ensure the stable operation of the servers under various working conditions, especially in the face of mechanical vibration and impact loads during server migration or transportation, its protection measures mainly rely on the reinforced design of the server's internal hardware and the use of shockproof materials.
[0003] Most of the current big data servers adopt an integrated design, with the server circuit directly fixed inside the server frame and lacking effective external protection devices. When the server is operating during transportation or in a dynamic environment, it is prone to external shock or vibration damage, which poses a serious threat to the stability of the server circuit and data security. Summary of the Invention
[0004] The present application provides a server protection device control system to at least solve the problem in the related art that big data servers lack effective external protection devices.
[0005] The present application provides a server protection device, including a protective shell, which includes a connected accommodating cavity and an opening; the server protection device also includes a shock-absorbing assembly, which includes: a bearing plate and a movable plate, which are arranged in the accommodating cavity from top to bottom, and the bearing plate is used to support the server body; a fixed connecting rod, which is arranged in the accommodating cavity and located between the bearing plate and the movable plate, and the two ends of the fixed connecting rod are respectively connected to the two opposite inner wall surfaces of the accommodating cavity; a connecting rod swinging assembly, which is perpendicular to the fixed connecting rod, and the middle part of the connecting rod swinging assembly is rotatably connected to the fixed connecting rod, and the two ends of the connecting rod swinging assembly are respectively hinged to the bearing plate and the movable plate, so that the bearing plate and the movable plate can be arranged to move relative to each other; an elastic buffer assembly, which is arranged between the bearing plate and the movable plate to provide elastic buffer support for the relative movement of the bearing plate and the movable plate under the action of external force.
[0006] Furthermore, the connecting rod swing assembly includes: a linkage rod, the linkage rod is perpendicular to the fixed connecting rod, and the middle part of the linkage rod is rotatably mounted on the fixed connecting rod; two swing rods, the first ends of the two swing rods are respectively hinged to the two ends of the linkage rod, and the second ends of the two swing rods are respectively hinged to the supporting plate and the movable plate, so that the supporting plate and the movable plate can move relative to each other under the swing of the linkage rod.
[0007] Furthermore, the elastic buffer assembly includes: a support rod, a first end of the support rod is hinged to the supporting plate; a hinged slider, the hinged slider is hinged to the second end of the support rod, a buffer slide groove is provided on the movable plate, the hinged slider is provided in the buffer slide groove and is slidably provided relative to the buffer slide groove; a damping rod, the damping rod is provided in the buffer slide groove and is passed through the hinged slider, and the two ends of the damping rod are respectively connected to the two ends of the buffer slide groove; two buffer elastic parts, the two buffer elastic parts are both mounted on the damping rod and are respectively located on opposite sides of the hinged slider.
[0008] Furthermore, the shock absorbing assembly includes: a fixed shell, which is located on a side of the supporting plate away from the movable plate and is spaced apart from the supporting plate to form an installation cavity for installing the server body together with the supporting plate; a limit frame, which can be slidably passed through the supporting plate, and the first end and the second end of the limit frame are respectively located on opposite sides of the supporting plate; the first end of the limit frame is fixedly connected to the fixed shell.
[0009] Furthermore, the shock absorbing assembly includes: a gear, a limiting rack is provided at the second end of the limit frame, the gear is rotatably provided on the movable plate and engages with the limiting rack to rotate under the drive of the limit frame; an extension plate, an extension slide is provided on the bottom plate of the protective shell, the extension slide is connected to the outside of the protective shell, the extension plate is slidably connected to the extension slide to extend out of the protective shell or retract into the protective shell; a transmission assembly, the two ends of the transmission assembly are respectively connected to the gear and the extension plate, and the gear drives the extension plate to slide back and forth through the transmission assembly.
[0010] Furthermore, the shock absorbing assembly includes a connecting shaft and a limit block, the limit block is installed on the movable plate, the connecting shaft is arranged on the limit block, and the gear is sleeved on the connecting shaft; and / or the transmission assembly includes a fixed slide and a driven rod, the fixed slide is installed above the extension plate, the first end of the driven rod is hinged to the gear, and the second end of the driven rod is slidably and rotatably connected to the fixed slide; and / or a pulley is provided at the bottom of the extension plate, and the lower side of the pulley is lower than the lower side of the extension plate.
[0011] Furthermore, the server protection device also includes a detachable protective component, which includes: a dustproof plate, which is arranged at the opening; a locking mechanism, which is installed on the protective shell and connected to the dustproof plate, and at least part of the locking mechanism is movably arranged to lock or unlock the position of the dustproof plate.
[0012] Furthermore, the detachable protective assembly also includes a sliding guide rail arranged on the protective shell, the sliding guide rail is located at the opening, and the dustproof plate can be slidably inserted on the sliding guide rail; the locking mechanism includes: a carrying box, the carrying box is fixedly connected to the protective shell, and the carrying box includes a carrying cavity; a dustproof plate limiting rod, the dustproof plate limiting rod can be slidably passed through the protective shell, the first end of the dustproof plate limiting rod is connected to the dustproof plate, and the second end of the dustproof plate limiting rod is located in the carrying cavity; a limiting rod fastener, the limiting rod fastener is rotatably arranged in the carrying cavity around a predetermined axis; a slot is provided on the dustproof plate limiting rod that is plugged into and matched with the first end of the limiting rod fastener; a pull rod, the pull rod can be slidably passed through the carrying box, the first end of the pull rod is located outside the carrying box, and the second end of the pull rod is hinged to the second end of the limit rod fastener after passing through the carrying box, so as to drive the limit rod fastener to rotate by pulling the pull rod, so that the first end of the limit rod fastener is plugged into or separated from the slot to lock or unlock the position of the dustproof plate.
[0013] Furthermore, the locking mechanism also includes: a second connecting rod, the second connecting rod is arranged in the bearing cavity, the two ends of the second connecting rod are respectively connected to the two opposite inner wall surfaces of the bearing cavity, and the limiting rod buckle is rotatably mounted on the second connecting rod; and / or a first elastic support member, the first end of the first elastic support member contacts the inner wall surface of the bearing cavity, and the second end of the first elastic support member contacts the second end of the limiting rod buckle; and / or a second elastic support member, the first end of the second elastic support member contacts the inner wall surface of the bearing cavity, and the second end of the second elastic support member contacts the second end of the dust plate limiting rod.
[0014] Furthermore, the server protection device includes a detection and control component, the detection and control component includes a central processing unit, and the central processing unit is arranged in the protective shell; the detection and control component also includes: a three-axis acceleration sensor, the three-axis acceleration sensor is connected to the central processing unit, and the three-axis acceleration sensor is connected to the elastic buffer component to detect the vibration frequency and impact intensity of the elastic buffer component, and the central processing unit is used to adjust the resistance coefficient of the damping rod and the preload force of the buffer elastic part in the elastic buffer component according to the vibration frequency and impact intensity; and / or a pressure sensor, the pressure sensor is connected to the central processing unit, and the pressure sensor is arranged on the connecting rod swinging component to detect the contact stress of the connecting rod swinging component during the swinging process, and the central processing unit is used to adjust the swinging friction of the connecting rod swinging component according to the contact stress; and / or a temperature sensor, the temperature sensor is connected to the central processing unit, and the temperature sensor is arranged in the accommodating cavity and at the opening to detect the real-time temperature in the accommodating cavity, and the central processing unit is used to determine whether the opening is blocked according to the real-time temperature.
[0015] The present application also provides a server protection device control system, which is applicable to the above-mentioned server protection device. The server protection device control system includes: a sensor acquisition module, which is used to collect real-time data in the accommodating cavity. The real-time data information includes the vibration frequency and impact strength of the elastic buffer component, the real-time temperature in the accommodating cavity and the contact stress of the connecting rod swing component during the swinging process, and is transmitted to the central processing unit 402 through the embedded circuit at a sampling frequency of ≥1000Hz; a data processing and analysis module, which is connected to the sensor acquisition module. The data processing and analysis module has a built-in adaptive filtering algorithm and a preset threshold library to eliminate noise, extract features and determine abnormal states of the real-time data information from the sensor acquisition module, and use a machine learning model to predict the risk level to generate a score. analysis results; a dynamic control module, connected to the data processing and analysis module, for generating control instructions according to the analysis results, the control instructions being used to adjust the resistance coefficient of the damping rod and the preload force of the buffer elastic member in the elastic buffer assembly, adjust the swing amplitude of the connecting rod swing assembly, and determine whether the opening is blocked; a human-computer interaction and remote management module, connected to the dynamic control module, the human-computer interaction and remote management module including an operable display and a manual control interface, the operable display being used to display the analysis results and control instructions; wherein the manual control interface is connected to the cloud management platform, and the cloud management platform is also connected to the fault prediction module and the wireless upgrade module, so as to realize remote fault diagnosis, parameter configuration and firmware upgrade of the human-computer interaction and remote management module through the fault prediction module and the wireless upgrade module.
[0016] Through the present application, since the server protection device includes a protective shell, including a accommodating cavity and an opening connected to the accommodating cavity; the server protection device also includes a shock-absorbing assembly, the shock-absorbing assembly includes: a bearing plate and a movable plate, the bearing plate and the movable plate are arranged in the accommodating cavity from top to bottom, and the bearing plate is used to support the server body; a fixed connecting rod, the fixed connecting rod is arranged in the accommodating cavity and is located between the bearing plate and the movable plate, and the two ends of the fixed connecting rod are respectively connected to the two oppositely arranged inner wall surfaces of the accommodating cavity; a connecting rod swinging assembly, the connecting rod swinging assembly is perpendicular to the fixed connecting rod, the middle part of the connecting rod swinging assembly is rotatably connected to the fixed connecting rod, and the two ends of the connecting rod swinging assembly are respectively hinged to the bearing plate and the movable plate, so that the bearing plate and the movable plate can move relative to each other. Setting; an elastic buffer component, the elastic buffer component is arranged between the load-bearing plate and the movable plate to provide elastic buffer support for the relative movement of the load-bearing plate and the movable plate under the action of external force; in this way, the server protection device of the present application utilizes the synergistic effect of the connecting rod swing component and the elastic buffer component in the shock-absorbing component, which can not only reduce the rigid impact transmitted to the server body by the swing of the connecting rod swing component when it is impacted by the outside world, but also absorb the impact energy through the elastic buffer component to protect the server body from damage, solving the problem of the lack of effective external protection devices for big data servers in related technologies, and achieving the technical effect of significantly improving the impact resistance of the server in transportation or dynamic environments, and ensuring the stability and safety of the server circuit. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] In order to more clearly illustrate the embodiments of the present application, the following is a brief introduction to the drawings required for use in the embodiments. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.
[0018] Figure 1 A schematic diagram of the structure of a server protection device provided in an embodiment of the present application;
[0019] Figure 2 for Figure 1 A cross-sectional view of the server protection device shown along a first direction without including a small portion of the protective housing;
[0020] Figure 3 for Figure 1 A cross-sectional view of the server protection device shown along the second direction without including a small portion of the protective housing;
[0021] Figure 4 for Figure 1 A cross-sectional view of the server protection device shown along a third direction without including a small portion of the protective housing;
[0022] Figure 5for Figure 4 A partial enlarged view of the server protection device at point A shown;
[0023] Figure 6 for Figure 4 A schematic structural diagram of an elastic buffer assembly of a server protection device shown;
[0024] Figure 7 for Figure 4 A cross-sectional view of the server protection device is shown without the majority of the protective housing;
[0025] Figure 8 for Figure 1 A cross-sectional view of a detachable guard assembly of the server protection device shown;
[0026] Figure 9 A schematic diagram of the structure of a server protection device control system provided in an embodiment of the present application.
[0027] The above drawings include the following reference numerals:
[0028] 1. Server body;
[0029] 2. Shock-absorbing assembly; 200. Accommodating chamber; 201. Protective housing; 202. Fixed connecting rod; 203. Linking rod; 204. Swinging rod; 205. Loading plate; 206. Movable plate; 207. Support rod; 208. Articulated slider; 209. Damping rod; 210. Buffer elastic member; 211. Limiting frame; 212. Fixed housing; 213. Rubber buffer pad; 214. Connecting shaft; 215. Gear; 216. Driven rod; 217. Fixed slide; 218. Extension plate; 219. Connecting rod swing assembly; 220. Elastic buffer assembly; 221. Rotating connecting groove; 222. Buffer chute; 223. Extension chute; 224. Transmission assembly; 225. Limiting block; 226. Pulley;
[0030] 3. Removable protective assembly; 300. Carrying chamber; 301. Carrying box; 302. Second connecting rod; 303. Limiting rod fastening member; 304. Pull rod; 305. First spring; 306. First connecting block; 307. Second connecting block; 308. Second spring; 309. Dustproof plate limiting rod; 310. Dustproof plate; 311. Sliding guide rail; 312. First elastic supporting member; 313. Second elastic supporting member; 314. Locking mechanism;
[0031] 4. Detection control component; 400. Three-axis acceleration sensor; 401. Temperature sensor; 402. Central processing unit; 403. Pressure sensor;
[0032] 5. Server protection device control system; 501. Sensor acquisition module; 502. Data processing and analysis module; 503. Dynamic control module; 504. Human-computer interaction and remote management module; 505. Cloud management platform; 506. Fault prediction module; 507. Wireless upgrade module; 508. Algorithm module. DETAILED DESCRIPTION
[0033] The following will be combined with the accompanying drawings in the embodiments of this application to clearly and completely describe the technical solutions in the embodiments of this application. Obviously, the embodiments described are only part of the embodiments of this application, not all of them. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of this application.
[0034] It should be noted that the terms "center," "longitudinal," "transverse," "length," "width," "thickness," "upper," "lower," "front," "back," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "clockwise," "counterclockwise," "axial," "radial," "circumferential," and the like, indicating positions or relationships, are based on the positions or relationships shown in the accompanying drawings and are intended solely for ease of description and simplification of the present application. They are not intended to indicate or imply that the devices or components referred to must have, be constructed, or operate in a specific orientation, and therefore should not be construed as limiting the present application. The terms "mounted," "connected," and "connected" should be interpreted broadly, and may include, for example, fixed, removable, or integral connections; mechanical or electrical connections; direct or indirect connections through an intermediary; and internal communication between two components. The terms "parallel," "perpendicular," and "equal" encompass the described conditions and conditions similar to the described conditions, provided that the range of the similar conditions is within an acceptable range of deviation, as determined by a person of ordinary skill in the art taking into account the measurement in question and the errors associated with the measurement of the particular quantity (i.e., the limitations of the measurement system). For example, "parallel" includes both absolute parallelism and approximate parallelism, where the acceptable deviation range for approximate parallelism may be, for example, within 5°; "perpendicular" includes both absolute perpendicularity and approximate perpendicularity, where the acceptable deviation range for approximate perpendicularity may also be, for example, within 5°. "Equal" includes both absolute equality and approximate equality, where the acceptable deviation range for approximate equality may be, for example, that the difference between the two is less than or equal to 5% of either. Those skilled in the art will understand the specific meanings of the above terms in this application based on the specific circumstances.
[0035] In order to enable those skilled in the art to better understand the present application, the present application is further described in detail below with reference to the accompanying drawings and specific implementation methods.
[0036] like Figures 1 to 9 As shown, the present application provides a server protection device, including a protective shell 201, including a receiving cavity 200 and an opening portion communicating with the receiving cavity 200; the server protection device also includes a shock absorbing assembly 2, the shock absorbing assembly 2 including: a bearing plate 205 and a movable plate 206, the bearing plate 205 and the movable plate 206 are arranged in the receiving cavity 200 from top to bottom, the bearing plate 205 is used to support the server body 1; a fixed connecting rod 202, the fixed connecting rod 202 is arranged in the receiving cavity 200 and is located between the bearing plate 205 and the movable plate 206, and the two ends of the fixed connecting rod 202 are respectively connected to the receiving cavity 200. 0 is connected to two inner wall surfaces that are relatively set; a connecting rod swing assembly 219, the connecting rod swing assembly 219 is perpendicular to the fixed connecting rod 202, the middle part of the connecting rod swing assembly 219 is rotatably connected to the fixed connecting rod 202, and the two ends of the connecting rod swing assembly 219 are respectively hinged to the supporting plate 205 and the movable plate 206, so that the supporting plate 205 and the movable plate 206 can be set to move relative to each other; an elastic buffer assembly 220, the elastic buffer assembly 220 is arranged between the supporting plate 205 and the movable plate 206 to provide elastic buffer support for the relative movement of the supporting plate 205 and the movable plate 206 under the action of external force.
[0037] In this way, the server protection device of the present application utilizes the synergistic effect of the connecting rod swing assembly 219 and the elastic buffer assembly 220 in the shock absorbing assembly 2, which can not only reduce the rigid impact transmitted to the server body 1 by the swing of the connecting rod swing assembly 219 when it is impacted by the outside world, but also absorb the impact energy through the elastic buffer assembly 220 to protect the server body 1 from damage, solving the problem of the lack of effective external protection devices for big data servers in related technologies, significantly improving the impact resistance of the server in transportation or dynamic environments, and ensuring the stability and safety of the server circuit.
[0038] The application scenarios of the server protection device of the present application include the transportation of servers in data centers, the use of servers in mobile office environments, etc. Especially in situations where the server needs to be moved frequently, the server protection device can provide effective protection for the server body.
[0039] like Figure 4 and Figure 7As shown, the connecting rod swing assembly 219 includes: a linkage rod 203, the linkage rod 203 is perpendicular to the fixed connecting rod 202, and the middle part of the linkage rod 203 is rotatably mounted on the fixed connecting rod 202; two swing rods 204, the first ends of the two swing rods 204 are respectively hinged to the two ends of the linkage rod 203, and the second ends of the two swing rods 204 are respectively hinged to the supporting plate 205 and the movable plate 206, so that the supporting plate 205 and the movable plate 206 can move relative to each other under the swing of the linkage rod 203.
[0040] In the server protection device of the present application, the connecting rod swing assembly 219 of the shock absorbing assembly 2 drives the two swing rods 204 to move through the swing of the linkage rod 203 when it is subjected to external vibration impact, so as to drive the load-bearing plate 205 and the movable plate 206 to move closer to or away from each other, thereby adjusting the relative distance between the load-bearing plate 205 and the movable plate 206, realizing dynamic buffering of the server body 1, improving the flexibility and response speed of the server protection device, being able to respond to impacts of different intensities more accurately, being able to adapt to the protection of the server body 1 during transportation, and improving the protection measures for the server body 1 under sudden environmental changes such as earthquakes.
[0041] like Figure 7 As shown, a rotation connecting groove 221 is respectively provided on the supporting plate 205 and the movable plate 206, and a connecting pin is respectively provided in the two rotation connecting grooves 221. The two connecting pins are respectively hinged to the second ends of the two swing rods 204, thereby rotatably connecting the swing rod 204 with the supporting plate 205 and the movable plate 206, ensuring the overall coordinated operation of the connecting rod swing assembly 219.
[0042] Specifically, the shock absorbing assembly 2 of the server protection device of the present application also includes a lubricating device, which is used to supply lubricating oil to the connection between the linkage rod 203 and the fixed connecting rod 202 and the connection between each swing rod 204 and the linkage rod 203.
[0043] like Figures 2 to 3 as well as Figure 6 and Figure 7 As shown, the elastic buffer assembly 220 includes: a support rod 207, the first end of the support rod 207 is hinged to the supporting plate 205; a hinged slider 208, the hinged slider 208 is hinged to the second end of the support rod 207, and a buffer slide 222 is provided on the movable plate 206, the hinged slider 208 is arranged in the buffer slide 222 and is slidably arranged relative to the buffer slide 222; a damping rod 209, the damping rod 209 is arranged in the buffer slide 222 and is passed through the hinged slider 208, and the two ends of the damping rod 209 are respectively connected to the two ends of the buffer slide 222; two buffer elastic members 210, the two buffer elastic members 210 are both mounted on the damping rod 209 and are respectively located on opposite sides of the hinged slider 208.
[0044] Specifically, the buffer elastic member 210 is a spring.
[0045] In the server protection device of the present application, the elastic buffer component 220 of the shock absorbing component 2 is provided with a combination of a damping rod 209 and a buffer elastic member 210. When the supporting plate 205 and the movable plate 206 move relative to each other, the support rod 207 will push the hinged slider 208 to slide in the buffer slide groove 222. The buffer elastic member 210 will absorb the impact energy due to compression. At the same time, the damping rod 209 will provide additional damping effect, further stabilizing the server body 1, greatly reducing the vibration amplitude of the server body 1 when the server protection device is impacted, effectively protecting the internal circuit of the server body 1, significantly improving the impact resistance of the server body 1, and ensuring the safe operation of the server body 1 in various dynamic environments.
[0046] The shock absorbing assembly 2 includes a plurality of elastic buffer assemblies 220 , which are spaced apart between the supporting plate 205 and the movable plate 206 and are respectively located on both sides of the fixed connecting rod 202 and the connecting rod swing assembly 219 .
[0047] Specifically, the shock absorbing assembly 2 of the server protection device of the present application also includes a damping adjustment device, which is connected to the damping rod 209 in the elastic buffer assembly 220 to adjust the resistance coefficient of the damping rod 209; wherein, the damping adjustment device can be a CDC suspension control system or an electronic controller, etc. depending on the type of the damping rod; the shock absorbing assembly 2 of the server protection device of the present application also includes an elastic adjustment device, which includes an adjustment motor, an adjustment nut and a screw, and the adjustment nut is movably arranged at the end of the buffer elastic member 210 away from the hinged slider 208, and the adjustment nut is threadedly connected to the screw, and the adjustment motor is connected to the screw to drive the screw to rotate, so as to drive the adjustment nut to move, so as to adjust the distance between the two ends of the buffer elastic member 210, thereby adjusting the preload force of the buffer elastic member 210.
[0048] like Figure 2 、 Figure 3 and Figure 7 As shown, the shock absorbing assembly 2 includes: a fixed shell 212, which is located on the side of the supporting plate 205 away from the movable plate 206 and is spaced apart from the supporting plate 205, so as to form an installation cavity for installing the server body 1 together with the supporting plate 205; a limiting frame 211, which is slidably passed through the supporting plate 205, and the first end and the second end of the limiting frame 211 are respectively located on opposite sides of the supporting plate 205; the first end of the limiting frame 211 is fixedly connected to the fixed shell 212.
[0049] In the server protection device of the present application, the cooperation of the limit frame 211 and the fixed shell 212, together with the supporting plate 205, provides a stable protection frame for the server body 1. The sliding of the limit frame 211 on the supporting plate 205 can avoid interference between the limit frame 211 and the movable plate 206, and can also avoid interference between the limit frame 211 and the fixed shell 212 and the top of the protective shell 201, ensuring that the server body 1 can be properly buffered when the server protection device is impacted, improving the installation stability and impact resistance of the server body 1, reducing the failure rate of the server body 1 in a dynamic environment, ensuring that the server body 1 can still maintain normal operation when subjected to slight collisions or vibrations, and reducing the maintenance cost of the server body 1.
[0050] like Figure 5 As shown, the shock absorbing assembly 2 includes: a gear 215, a limiting rack is provided at the second end of the limiting frame 211, the gear 215 is rotatably provided on the movable plate 206 and engages with the limiting rack to rotate under the drive of the limiting frame 211; an extension plate 218, an extension slide 223 is provided on the bottom plate of the protective shell 201, the extension slide 223 is connected to the outside of the protective shell 201, the extension plate 218 is slidably connected to the extension slide 223 to extend out of the protective shell 201 or retract into the protective shell 201; a transmission assembly 224, the two ends of the transmission assembly 224 are respectively connected to the gear 215 and the extension plate 218, and the gear 215 drives the extension plate 218 to slide back and forth through the transmission assembly 224.
[0051] In the server protection device of the present application, the shock absorbing component 2 converts the movement of the limit frame 211 into the telescopic movement of the extension plate 218 through the transmission of the gear 215 and the transmission component 224. When the server body 1 is subjected to a large impact, the extension plate 218 can be automatically extended, which significantly enhances the stability of the server protection device when facing a large impact and reduces the risk of damage to the server body 1 in a severe vibration environment.
[0052] like Figure 5 As shown, the shock absorbing assembly 2 includes a connecting shaft 214 and a limit block 225, the limit block 225 is installed on the movable plate 206, the connecting shaft 214 is set on the limit block 225, and the gear 215 is sleeved on the connecting shaft 214; and / or the transmission assembly 224 includes a fixed slide 217 and a driven rod 216, the fixed slide 217 is installed above the extension plate 218, the first end of the driven rod 216 is hinged to the gear 215, and the second end of the driven rod 216 is slidably and rotatably connected to the fixed slide 217; and / or a pulley 226 is provided at the bottom of the extension plate 218, and the lower side of the pulley 226 is lower than the lower side of the extension plate 218.
[0053] In the server protection device of the present application, the shock-absorbing assembly 2 reduces the sliding friction between the extension plate 218 and the supporting base during the extension and retraction process by setting a pulley 226 at the bottom of the extension plate 218, ensuring the smooth movement of the extension plate 218, and improving the response speed and service life of the extension plate 218, so that the server protection device can quickly extend the extension plate 218 when facing an impact, so as to provide immediate protection for the server body 1, thereby providing additional stability for the server body 1.
[0054] like Figure 7 As shown, the shock absorbing assembly 2 includes a rubber buffer pad 213 . The rubber buffer pad 213 is disposed on the fixing shell 212 and is located on a side of the fixing shell 212 close to the supporting plate 205 .
[0055] In the server protection device of the present application, the shock-absorbing component 2 utilizes the elastic properties of the rubber buffer pad 213 to provide an additional buffer layer for the server body 1, which can effectively absorb vibration energy, further reducing the impact of external high-frequency vibration on the server body 1, greatly improving the impact resistance of the server body 1, and protecting the integrity and stability of the circuit within the server body 1.
[0056] like Figure 1 、 Figure 3 and Figure 8 As shown, the server protection device also includes a detachable protective component 3, which includes: a dustproof plate 310, which is arranged at the opening; a locking mechanism 314, which is installed on the protective shell 201 and connected to the dustproof plate 310, and at least part of the locking mechanism 314 is movably arranged to lock or unlock the position of the dustproof plate 310.
[0057] In the server protection device of the present application, a combination of an opening and a detachable protective component 3 is provided so that the server body 1 can communicate with the outside world through the dustproof plate 310 for air circulation to achieve heat dissipation. The dustproof plate 310 can also prevent dust from entering the server body 1, thereby protecting the circuits in the server body 1. The dustproof plate 310 can be slid and removed along the sliding guide rail 311 when the heat dissipation efficiency decreases due to dust accumulation for cleaning or replacement. This improves the heat dissipation efficiency and dustproof performance of the server body 1 while simplifying the maintenance process of the dustproof plate 310.
[0058] like Figure 1 、 Figure 3 and Figure 8As shown, the detachable protective assembly 3 also includes a sliding guide rail 311 provided on the protective shell 201, the sliding guide rail 311 is located at the opening, and the dustproof plate 310 can be slidably inserted on the sliding guide rail 311; the locking mechanism includes: a carrying box 301, the carrying box 301 is fixedly connected to the protective shell 201, and the carrying box 301 includes a carrying cavity 300; a dustproof plate limiting rod 309, the dustproof plate limiting rod 309 can be slidably passed through the protective shell 201, the first end of the dustproof plate limiting rod 309 is connected to the dustproof plate 310, and the second end of the dustproof plate limiting rod 309 is located in the carrying cavity 300; a limiting rod buckle 303, which limits The positioning rod fastener 303 is rotatably arranged in the bearing cavity 300 around a predetermined axis; a slot is provided on the dustproof plate limiting rod 309, which is plugged into or matched with the first end of the limiting rod fastener 303; the pull rod 304, the pull rod 304 is slidably passed through the bearing box 301, and the first end of the pull rod 304 is located outside the bearing box 301. The second end of the pull rod 304 is hinged to the second end of the limiting rod fastener 303 after passing through the bearing box 301, so that the limiting rod fastener 303 is driven to rotate by pulling the pull rod 304, so that the first end of the limiting rod fastener 303 is plugged into or separated from the slot to lock or unlock the position of the dustproof plate 310.
[0059] Specifically, the locking mechanism 314 is located below the dustproof plate 310, and the sliding guide rail 311 extends in a direction perpendicular to the supporting base surface of the server protection device. The upper end of the sliding groove on the sliding guide rail 311 is open for disassembling and assembling the dustproof plate 310, and the lower end of the sliding groove on the sliding guide rail 311 is closed to prevent the dustproof plate 310 from falling downward when being disassembled and assembled; a plurality of filter holes are provided on the dustproof plate 310.
[0060] In this way, when the server body 1 needs ventilation and heat dissipation, the limit rod buckle 303 can be rotated by pulling the pull rod 304, so that the first end of the limit rod buckle 303 is plugged into the slot to lock the position of the dustproof plate 310, and the dustproof plate 310 can be locked in the sliding guide rail 311 to be installed at the opening to filter the air flowing at the opening; when the heat dissipation efficiency of the dustproof plate 310 is reduced due to dust accumulation, the limit rod buckle 303 can be rotated by pulling the pull rod 304, so that the first end of the limit rod buckle 303 is separated from the slot to unlock the position of the dustproof plate 310, so that the dustproof plate 310 can be removed from the sliding guide rail 311, thereby improving the heat dissipation efficiency and dustproof performance of the server protection device and extending the service life of the server protection device.
[0061] like Figure 8As shown, the locking mechanism 314 also includes: a second connecting rod 302, the second connecting rod 302 is arranged in the bearing cavity 300, the two ends of the second connecting rod 302 are respectively connected to the two opposite inner wall surfaces of the bearing cavity 300, and the limiting rod fastener 303 is rotatably mounted on the second connecting rod 302; and / or a first elastic support member 312, the first end of the first elastic support member 312 is in contact with the inner wall surface of the bearing cavity 300, and the second end of the first elastic support member 312 is in contact with the second end of the limiting rod fastener 303; and / or a second elastic support member 313, the first end of the second elastic support member 313 is in contact with the inner wall surface of the bearing cavity 300, and the second end of the second elastic support member 313 is in contact with the second end of the dustproof plate limiting rod 309.
[0062] In this way, through the cooperation of the second connecting rod 302, the first elastic support member 312 and the second elastic support member 313, the stability of locking and unlocking between the slot of the dustproof plate limit rod 309 and the first end of the limit rod buckle 303 is guaranteed, thereby ensuring the stability of locking or unlocking the dustproof plate 310, and ensuring that the dustproof plate 310 can be accurately installed or disassembled when needed, providing effective dustproof and heat dissipation management for the server body 1.
[0063] When the cam 314 is in the unlock state, the cam 314 will be unlocked, and the lock 314 will be unlocked. Specifically, the first elastic support member 312 includes a first spring 305 and a first connecting block 306. The first spring 305 is located on the side of the first connecting block 306 away from the limit rod buckle 303. The first connecting block 306 is used to contact the limit rod buckle 303. The first spring 305 presses against the limit rod buckle 303 through the first connecting block 306, thereby ensuring the stability of the insertion between the dustproof plate limit rod 309 and the limit rod buckle 303; the second elastic support member 313 includes a second connecting block 307 and a second spring 308. The second spring 308 is located on the side of the second connecting block 307 away from the dustproof plate limit rod 309. The second connecting block 307 is used to contact the dustproof plate limit rod 309. The second spring 308 presses against the dustproof plate limit rod 309 through the second connecting block 307, thereby further ensuring the stability of the insertion between the dustproof plate limit rod 309 and the limit rod buckle 303.
[0064] The detachable protective assembly 3 further includes a pull rod driving component connected to the driving pull rod 304 . The pull rod driving component drives the pull rod 304 to move, thereby automating the unlocking process of the position of the dustproof plate 310 .
[0065] like Figure 2 and Figure 7As shown, the server protection device includes a detection and control component 4, which includes a central processing unit 402, and the central processing unit 402 is arranged in the protective shell 201; the detection and control component 4 also includes: a three-axis acceleration sensor 400, the three-axis acceleration sensor 400 is connected to the central processing unit 402, and the three-axis acceleration sensor 400 is connected to the elastic buffer component 220 to detect the vibration frequency and impact intensity of the elastic buffer component 220, and the central processing unit 402 is used to adjust the resistance coefficient of the damping rod 209 in the elastic buffer component 220 and the preload force of the buffer elastic member 210 according to the vibration frequency and impact intensity; and / or Or a pressure sensor 403, the pressure sensor 403 is connected to the central processing unit 402, and the pressure sensor 403 is arranged on the connecting rod swing assembly 219 to detect the contact stress of the connecting rod swing assembly 219 during the swinging process, and the central processing unit 402 is used to adjust the swinging friction of the connecting rod swing assembly 219 according to the contact stress; and / or a temperature sensor 401, the temperature sensor 401 is connected to the central processing unit 402, and the temperature sensor 401 is arranged in the accommodating cavity 200 and located at the opening to detect the real-time temperature in the accommodating cavity 200, and the central processing unit 402 is used to determine whether the opening is blocked according to the real-time temperature.
[0066] The server protection device of the present application achieves real-time monitoring and intelligent regulation of the server operating environment through the integrated detection and control components 4 of various sensors and the central processing unit 402. When an abnormality is detected, the central processing unit 402 can adjust and control in real time according to a preset control strategy to achieve the optimal protection effect. This realizes the intelligence of the server protection device, improves the accuracy and efficiency of server protection, and can also provide early warning of potential failures, take preventive measures in advance, and ensure the safety and stability of the server under various operating conditions.
[0067] like Figure 9As shown, the present application also provides a server protection device control system, which is applicable to the above-mentioned server protection device. The server protection device control system includes: a sensor acquisition module 501, which is used to collect real-time data in the accommodating cavity 200, and the real-time data includes the vibration frequency and impact strength of the elastic buffer component 220, the real-time temperature in the accommodating cavity 200, and the contact stress of the connecting rod swing component 219 during the swinging process; a data processing and analysis module 502, which is connected to the sensor acquisition module 501, and the data processing and analysis module 502 has a built-in adaptive filtering algorithm and a preset threshold library to eliminate noise, extract features and determine abnormal states of the real-time data information from the sensor acquisition module 501, and use a machine learning model to predict the risk level to generate an analysis result; a dynamic control module 503, which is connected to the data processing and analysis module 502, and is used to generate control instructions according to the analysis results, and the control instructions are used To adjust the resistance coefficient of the damping rod 209 in the elastic buffer assembly 220 and the preload of the buffer elastic member 210 (the preload of the buffer elastic member 210 can be adjusted by controlling the adjustment motor to adjust the movement of the nut, screw and other transmission components), adjust the swing amplitude of the connecting rod swing assembly 219, and determine whether the opening is blocked; the human-computer interaction and remote management module 504 is connected to the dynamic control module 503, and the human-computer interaction and remote management module 504 includes an operable display and a manual control interface. The operable display is used to display analysis results and control instructions; wherein, the manual control interface is connected to the cloud management platform 505, and the cloud management platform 505 is also connected to the fault prediction module 506 and the wireless upgrade module 507, so as to realize remote fault diagnosis, parameter configuration and firmware upgrade of the human-computer interaction and remote management module 504 through the fault prediction module 506 and the wireless upgrade module 507.
[0068] The server protection device control system of the present application is software, and the detection control component 4 is hardware. The detection control component 4 is used to collect and process real-time data. The server protection device control system processes the processed data again and issues corresponding control instructions through the detection control component 4.
[0069] The server protection device control system of the present application realizes intelligent monitoring and dynamic control of the server protection device. When an abnormal situation is detected, the system can automatically adjust the protection strategy to ensure the safety and stability of the server under various operating conditions. The implementation effect is to improve the intelligence level of the server protection device, reduce maintenance costs, and improve management efficiency. Application scenarios include server management and maintenance in data centers, as well as protection when the server needs to run for a long time or is in a harsh environment. During use, the human-computer interaction and remote management module 504 continuously receives the analysis results from the data processing and analysis module 502, and automatically or manually adjusts the control parameters of the dynamic control module 503 according to the analysis results to ensure the safety and stability of the server under various operating conditions. At the same time, through the cloud management platform 505, remote fault diagnosis, parameter configuration and firmware upgrades can be achieved, which greatly improves the maintainability and adaptability of the server protection device.
[0070] Specifically, the server protection device control system of the present application also includes an algorithm module 508 connected to the data processing and analysis module 502, so that the data processing and analysis module 502 can dynamically update the control parameters through the algorithm module 508 to strengthen the learning algorithm; the preset threshold library includes the ISO10816 mechanical vibration standard, and the machine learning model is a support vector machine.
[0071] The adjustment logic of the dynamic control module of the server protection device control system of the present application includes: activating the maximum damping mode when the instantaneous impact acceleration >5g is detected to link the extension plate 218 to expand the base area; starting the heat dissipation priority mode and pushing an alarm when the ambient temperature >45°C is detected.
[0072] This application also provides a server protection device control system whose specific working process is as follows:
[0073] During the initialization phase, after the server protection device control system is started, it self-checks the status of the corresponding sensors, actuators, and communication modules, loads the preset protection strategy library, and calibrates the initial positions of the mechanical components (such as resetting the extension plate 218 and returning the damping rod 209 to zero, etc.).
[0074] When the data detected by each sensor is transmitted to the data processing and analysis module 502 through the sensor acquisition module 501 and processed by the data processing and analysis module 502, the following logic is triggered:
[0075] If a transient impact is detected (such as acceleration > 5g), the maximum damping mode is activated (depending on the type of damping rod. For example, the CDC suspension control system of the damping adjustment device can adjust the damping force of the damping rod 209 by controlling the solenoid valve; or the electronic controller of the damping adjustment device generates an input current based on the sensor data to control the opening of the solenoid valve, thereby adjusting the damping level of the damping rod 209. Sending a high current to the solenoid valve can correspond to a high damping force to quickly attenuate vibrations) to cooperate with the extension plate 218 extending out of the protective shell 201 to enhance the stability of the server protection device; the preload force of the buffer elastic member 210 can also be adjusted by controlling the elastic adjustment device to reduce friction resistance.
[0076] If it is detected that the real-time temperature in the accommodating cavity 200 exceeds a threshold value (such as >45°C), and it is determined whether the opening is blocked, the heat dissipation priority mode is activated, that is, the movement of the pull rod driving component of the detachable protective component 3 is controlled to unlock the position of the dustproof plate 310 so that the dustproof plate 310 can be removed from the opening, and an alarm message is displayed through the operable display to notify the operation and maintenance personnel to clean or replace the dustproof plate 310.
[0077] The above is a detailed introduction to a server protection device control system provided by the present application. This article uses specific examples to illustrate the principles and implementation methods of the present application. The description of the above embodiments is only intended to help understand the method and core concept of the present application. It should be pointed out that for ordinary technicians in this technical field, without departing from the principles of the present application, several improvements and modifications can be made to the present application, and these improvements and modifications also fall within the scope of protection of the claims of the present application.
Claims
1. A server protection device control system, characterized in that: Applicable to a server protection device, the server protection device comprises a protective shell (201), which comprises a communicating accommodation cavity (200) and an opening; the server protection device further comprises a shock absorbing assembly (2), which comprises: A carrying plate (205) and a movable plate (206) are arranged in the accommodating cavity (200) at intervals from top to bottom, and the carrying plate (205) is used to carry the server body (1); a fixed connecting rod (202) disposed in the accommodating cavity (200) and located between the supporting plate (205) and the movable plate (206), wherein both ends of the fixed connecting rod (202) are respectively connected to two oppositely disposed inner wall surfaces of the accommodating cavity (200); a connecting rod swing assembly (219) perpendicular to the fixed connecting rod (202), a middle portion of the connecting rod swing assembly (219) being rotatably connected to the fixed connecting rod (202), and two ends of the connecting rod swing assembly (219) being hinged to the supporting plate (205) and the movable plate (206), respectively, so that the supporting plate (205) and the movable plate (206) can be arranged to move relative to each other; An elastic buffer assembly (220) is arranged between the bearing plate (205) and the movable plate (206) to provide elastic buffer support for the relative movement of the bearing plate (205) and the movable plate (206) under the action of an external force. The elastic buffer assembly (220) includes a damping rod (209) and a buffer elastic member (210). When the bearing plate (205) and the movable plate (206) move relative to each other, the buffer elastic member (210) absorbs impact energy due to being compressed, and the damping rod (209) provides an additional damping effect. A detection control component (4), the detection control component (4) comprising a central processing unit (402), the central processing unit (402) being arranged in the protective housing (201); the detection control component (4) further comprising: a three-axis acceleration sensor (400), the three-axis acceleration sensor (400) being connected to the central processing unit (402), the three-axis acceleration sensor (400) being connected to the elastic buffer component (220) for detecting the vibration frequency and impact intensity of the elastic buffer component (220), the central processing unit (402) being used to adjust the resistance coefficient of the damping rod (209) in the elastic buffer component (220) and the preload force of the buffer elastic member (210) according to the vibration frequency and the impact intensity; a pressure sensor (403), the pressure sensor (403) being connected to the central processing unit (402), the pressure sensor (403) being arranged on the connecting rod swing assembly (219) for detecting contact stress of the connecting rod swing assembly (219) during a swinging process, the central processing unit (402) being used to adjust the swinging friction of the connecting rod swing assembly (219) according to the contact stress; a temperature sensor (401), the temperature sensor (401) being connected to the central processing unit (402), the temperature sensor (401) being arranged in the accommodating cavity (200) and located at the opening portion, for detecting the real-time temperature in the accommodating cavity (200), and the central processing unit (402) being used to determine whether the opening portion is blocked based on the real-time temperature; The server protection device control system includes: a sensing acquisition module (501) for collecting real-time data in the accommodating cavity (200), the real-time data including the vibration frequency and impact strength of the elastic buffer component (220), the real-time temperature in the accommodating cavity (200), and the contact stress of the connecting rod swing component (219) during the swinging process; A data processing and analysis module (502) is connected to the sensor acquisition module (501), and the data processing and analysis module (502) has a built-in adaptive filtering algorithm and a preset threshold library for performing noise elimination, feature extraction, and abnormal state determination on the real-time data information from the sensor acquisition module (501), and using a machine learning model to predict the risk level to generate an analysis result; A dynamic control module (503) is connected to the data processing and analysis module (502) and is used to generate a control instruction based on the analysis result, wherein the control instruction is used to adjust the resistance coefficient of the damping rod (209) and the preload force of the buffer elastic member (210) in the elastic buffer assembly (220), adjust the swing amplitude of the connecting rod swing assembly (219), and determine whether the opening is blocked; A human-computer interaction and remote management module (504) is connected to the dynamic control module (503), wherein the human-computer interaction and remote management module (504) comprises an operable display and a manual control interface, wherein the operable display is used to display the analysis result and the control instruction; The manual control interface is connected to a cloud management platform (505), and the cloud management platform (505) is further connected to a fault prediction module (506) and a wireless upgrade module (507), so as to implement remote fault diagnosis, parameter configuration and firmware upgrade for the human-computer interaction and remote management module (504) through the fault prediction module (506) and the wireless upgrade module (507).
2. The server protection device control system according to claim 1, characterized in that: The connecting rod swing assembly (219) includes: A linkage rod (203), the linkage rod (203) being perpendicular to the fixed connecting rod (202), and the middle portion of the linkage rod (203) being rotatably sleeved on the fixed connecting rod (202); Two swing rods (204), the first ends of the two swing rods (204) are respectively hinged to the two ends of the linkage rod (203), and the second ends of the two swing rods (204) are respectively hinged to the supporting plate (205) and the movable plate (206), so that the supporting plate (205) and the movable plate (206) can move relative to each other under the swing of the linkage rod (203).
3. The server protection device control system according to claim 1, characterized in that: The elastic buffer component (220) further includes: a support rod (207), wherein a first end of the support rod (207) is hinged to the bearing plate (205); An articulated slider (208), the articulated slider (208) being hinged to the second end of the support rod (207), a buffer slide groove (222) being provided on the movable plate (206), the articulated slider (208) being disposed in the buffer slide groove (222) and being slidably disposed relative to the buffer slide groove (222); The damping rod (209) is arranged in the buffer chute (222) and is passed through the hinged slider (208), and the two ends of the damping rod (209) are respectively connected to the two ends of the buffer chute (222); There are two buffer elastic members (210), and both buffer elastic members (210) are sleeved on the damping rod (209) and are respectively located on opposite sides of the hinged slider (208).
4. The server protection device control system according to claim 1, characterized in that: The shock absorbing assembly (2) comprises: a fixed shell (212), the fixed shell (212) being located on a side of the carrier plate (205) away from the movable plate (206) and spaced apart from the carrier plate (205) so as to form together with the carrier plate (205) an installation cavity for installing the server body (1); A limiting frame (211), the limiting frame (211) is slidably arranged on the supporting plate (205), and the first end and the second end of the limiting frame (211) are respectively located on opposite sides of the supporting plate (205); the first end of the limiting frame (211) is fixedly connected to the fixed shell (212).
5. The server protection device control system according to claim 4, characterized in that: The shock absorbing assembly (2) comprises: A gear (215), a limiting rack being provided at the second end of the limiting frame (211), the gear (215) being rotatably provided on the movable plate (206) and meshing with the limiting rack to rotate under the drive of the limiting frame (211); An extension plate (218), a bottom plate of the protective shell (201) is provided with an extension slide groove (223), the extension slide groove (223) is connected to the outside of the protective shell (201), and the extension plate (218) is slidably connected to the extension slide groove (223) to extend out of the protective shell (201) or retract into the protective shell (201); A transmission assembly (224), wherein both ends of the transmission assembly (224) are respectively connected to the gear (215) and the extension plate (218), and the gear (215) drives the extension plate (218) to slide back and forth through the transmission assembly (224).
6. The server protection device control system according to claim 5, characterized in that: The shock absorbing assembly (2) comprises a connecting shaft (214) and a limiting block (225), wherein the limiting block (225) is mounted on the movable plate (206), the connecting shaft (214) is arranged on the limiting block (225), and the gear (215) is sleeved on the connecting shaft (214); and / or, The transmission assembly (224) includes a fixed slide (217) and a driven rod (216), wherein the fixed slide (217) is mounted above the extension plate (218), a first end of the driven rod (216) is hinged to the gear (215), and a second end of the driven rod (216) is slidably and rotatably connected to the fixed slide (217); and / or, A pulley (226) is provided at the bottom of the extension plate (218), and the lower side of the pulley (226) is lower than the lower side of the extension plate (218).
7. The server protection device control system according to claim 1, characterized in that: The server protection device further comprises a detachable protection component (3), wherein the detachable protection component (3) comprises: a dustproof plate (310), the dustproof plate (310) being arranged at the opening; A locking mechanism (314) is mounted on the protective housing (201) and connected to the dustproof plate (310), and at least a portion of the locking mechanism (314) is movably arranged to lock or unlock the position of the dustproof plate (310).
8. The server protection device control system according to claim 7, characterized in that: The detachable protective assembly (3) further comprises a sliding guide rail (311) provided on the protective housing (201), the sliding guide rail (311) being located at the opening, and the dustproof plate (310) being slidably inserted on the sliding guide rail (311); the locking mechanism (314) comprises: A carrying box (301), the carrying box (301) is fixedly connected to the protective shell (201), and the carrying box (301) includes a carrying cavity (300); a dust plate limiting rod (309), the dust plate limiting rod (309) being slidably disposed on the protective housing (201), a first end of the dust plate limiting rod (309) being connected to the dust plate (310), and a second end of the dust plate limiting rod (309) being located in the bearing cavity (300); A limit rod fastening member (303), the limit rod fastening member (303) being rotatably arranged in the bearing cavity (300) around a predetermined axis; a slot for plugging and cooperating with the first end of the limit rod fastening member (303) is provided on the dustproof plate limit rod (309); A pull rod (304), the pull rod (304) is slidably provided in the carrier box (301), the first end of the pull rod (304) is located outside the carrier box (301), and the second end of the pull rod (304) is hinged to the second end of the limit rod fastener (303) after passing through the carrier box (301), so that the limit rod fastener (303) is driven to rotate by pulling the pull rod (304), so that the first end of the limit rod fastener (303) is plugged into or separated from the slot, so as to lock or unlock the position of the dustproof plate (310).
9. The server protection device control system according to claim 8, characterized in that: The locking mechanism (314) further comprises: a second connecting rod (302), the second connecting rod (302) being arranged in the bearing cavity (300), the two ends of the second connecting rod (302) being respectively connected to two inner wall surfaces of the bearing cavity (300) that are arranged opposite to each other, and the limiting rod fastening member (303) being rotatably sleeved on the second connecting rod (302); and / or, a first elastic support member (312), wherein a first end of the first elastic support member (312) contacts an inner wall surface of the bearing cavity (300), and a second end of the first elastic support member (312) contacts a second end of the limiting rod fastening member (303); and / or, A second elastic support member (313), wherein a first end of the second elastic support member (313) contacts the inner wall surface of the bearing cavity (300), and a second end of the second elastic support member (313) contacts the second end of the dustproof plate limiting rod (309).
Citation Information
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