Server Guard
By introducing a door body and an alarm component into the server protection device, a timely alarm is realized when the door body is damaged, solving the problem of complex structure and easy damage in the existing technology, and improving the safety and economy of the server.
Patent Information
- Application Number
- CN202510866984.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-26
- Publication Date
- 2025-09-12
- Estimated Expiration
- 2045-06-26
AI Technical Summary
Existing server protection devices have complex structures and high strength, and there is still a risk of being damaged, making it difficult to effectively protect the server.
A server protection device is designed, which includes a box body, a door body, a door lock assembly and an alarm assembly. When the door body moves, the alarm part triggers an alarm, and when the door lock assembly is damaged, an alarm signal is triggered, which simplifies the structure and improves the protection effect.
By simplifying the structural design, the protective effect of the server protection device is improved, the preparation cost is reduced, and when the door body is damaged, the user is promptly reminded that the server is at risk of being damaged.
Smart Images

Figure CN120387198B_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of protection devices, and in particular to a server protection device. Background Art
[0002] A server is a device used to process data, using a central processing unit (CPU). Servers store large amounts of data, which poses a risk of being compromised and stolen. To ensure server security, servers can be placed in protective devices.
[0003] Currently, server protection devices primarily enhance their performance by strengthening their structures to make them harder to damage. However, the stronger the protective device, the more complex its structure becomes, and the risk of damage persists. Summary of the Invention
[0004] The present application provides a storage server protection device to at least solve the problem of complex structure of the server protection device in the related art.
[0005] The present application provides a server protection device, which includes:
[0006] The box body has an installation cavity and an installation opening, wherein the installation cavity is used to accommodate the server;
[0007] a door body, movably connected to the box body, and configured to move to open or close the installation opening;
[0008] a door lock assembly, disposed on the door body, configured to lock the door body and the box body, wherein when the door body and the box body are locked, the door body is located at a preset position;
[0009] An alarm component comprises an alarm part and a trigger part, wherein the alarm part is arranged on the box body, and the trigger part is movably arranged on the box body;
[0010] When the door body moves from the preset position in a direction away from the installation opening to open the installation opening, the triggering portion is driven to move toward the alarm portion to trigger the alarm portion, so that the alarm portion sounds an alarm;
[0011] When the door body moves from the preset position toward the installation opening, the door body drives the trigger part to move away from the alarm part to a distance therebetween.
[0012] In the server protection device provided by the present application, the installation cavity of the box can be used to accommodate the server. After the door body moves to close the installation port, the door lock assembly can lock the door body and the box body so that the server is enclosed in the installation cavity of the box body, thereby achieving the purpose of protecting the server. When the door body moves directly away from the installation port from the preset position, the trigger part will trigger the alarm part to send out an alarm signal. When the door body moves from the preset position toward the installation port, the door body can drive the trigger part and the alarm part to have a distance, so that the trigger part will not trigger the alarm part, and accordingly, no alarm signal will be generated. In this way, when the door lock assembly is damaged and causes the door body to open the installation port, the trigger part can trigger the alarm part to generate an alarm signal, thereby effectively reminding the user that the server in the box body is at risk of being damaged, so that the server protection device of the present application has a better protection effect on the server. BRIEF DESCRIPTION OF THE DRAWINGS
[0013] 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.
[0014] Figure 1 A schematic diagram of a server protection device provided in an embodiment of the present application;
[0015] Figure 2 A schematic diagram of the connection between the door and the box of the server protection device provided in an embodiment of the present application;
[0016] Figure 3 for Figure 2 A schematic diagram showing the enlarged display of area A in the middle;
[0017] Figure 4 A schematic diagram of an alarm component of a server protection device provided in an embodiment of the present application;
[0018] Figure 5 for Figure 4 A schematic diagram showing an enlarged view of area B in the middle;
[0019] Figure 6 A schematic diagram of the processing module and communication module of the server protection device provided in an embodiment of the present application.
[0020] The above drawings include the following reference numerals:
[0021] 100-box; 110-installation cavity; 120-installation opening; 130-fixing plate; 140-rotating shaft; 150-heat dissipation hole;
[0022] 200-door body; 210-connecting block;
[0023] 300-door lock assembly; 310-fixing seat; 320-lock cylinder; 330-hanging plate; 340-key;
[0024] 400 - alarm component; 410 - alarm unit; 411 - alarm portion; 420 - trigger portion; 421 - limit slot; 422 - trigger portion; 423 - abutment platform;
[0025] 500 - driving assembly; 510 - first driving portion; 520 - guide portion; 521 - guide groove;
[0026] 600-limiting assembly; 610-limiting portion; 611-limiting bead; 620-second driving portion; 630-moving plate; 640-positioning plate;
[0027] 700-sealing part;
[0028] 810 - processing module; 820 - communication module; 830 - solar panel; 840 - battery; 850 - cloud server; 860 - receiving device. DETAILED DESCRIPTION
[0029] 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.
[0030] 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.
[0031] A server is a device used to process data, using a central processing unit (CPU). Servers store large amounts of data, which poses a risk of being compromised and stolen. To ensure server security, servers can be placed in protective devices.
[0032] Currently, server protection devices primarily enhance their performance by strengthening their structures to make them harder to damage. However, the stronger the protective device, the more complex its structure becomes, and the risk of damage persists.
[0033] In the server protection device proposed in the present application, the installation cavity of the box can be used to accommodate the server. After the door body moves to close the installation port, the door lock assembly can lock the door body and the box body so that the server is enclosed in the installation cavity of the box body, thereby achieving the purpose of protecting the server. When the door body moves directly away from the installation port from the preset position, the trigger part will trigger the alarm part to send out an alarm signal. When the door body moves from the preset position toward the installation port, the door body can drive the trigger part and the alarm part to have a distance, so that the trigger part will not trigger the alarm part, and accordingly, no alarm signal will be generated. In this way, when the door lock assembly is damaged and causes the door body to open the installation port, the trigger part can trigger the alarm part to generate an alarm signal, thereby effectively reminding the user that the server in the box body is at risk of being damaged, so that the server protection device of the present application has a better protection effect on the server.
[0034] 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.
[0035] See also Figure 1 As shown, an embodiment of the present application provides a server protection device, comprising a box 100, a door 200, a door lock assembly 300 and an alarm assembly 400. The server protection device can accommodate a server and protect the server from being damaged.
[0036] Among them, the box body 100 is the basic component of the server protection device of the present application. The box body 100 can provide an installation base for at least some of the other components of the server protection device and play the purpose of protecting at least some of the other components. The box body 100 can be made of metal material, so that the box body 100 has better structural strength, thereby making the durability and reliability of the box body 100 better. In addition, the box body 100 can also adopt a structure of part metal and part polymer material. Specifically, the parts of the box body 100 that are easily impacted by external forces or easily damaged can be made of metal materials, and the other parts of the box body 100 can be made of polymer materials. In this way, the box body 100 can have better structural strength while not being too heavy.
[0037] The housing 100 has a mounting cavity 110, which is a hollow structure within the housing 100. The housing 100 also has a mounting opening 120, which is an opening formed on the surface of the housing 100 and communicates with the mounting cavity 110. The mounting cavity 110 of the housing 100 can be used to accommodate a server, which can be installed in the mounting cavity 110 of the housing 100 through the mounting opening 120.
[0038] When the server is installed in the installation cavity 110 of the housing 100, a gap is provided between the outer wall of the server and the inner wall of the installation cavity 110, making it easier to install the server in the installation cavity 110. Furthermore, it should be understood that the server generates a large amount of heat during operation. By providing a gap between the server and the inner wall of the installation cavity 110, a heat dissipation channel is formed between the outer wall of the server and the inner wall of the installation cavity 110. Heat generated by the server during operation can be dissipated through the heat dissipation channel, preventing heat generated by the server from accumulating inside the server, thereby protecting the server.
[0039] The installation cavity 110 of the housing 100 can be provided on the side of the housing 100, so that the server can be more conveniently installed in the installation cavity 110 of the housing 100 through the installation opening 120. Accordingly, heat dissipation holes 150 can also be provided in other parts of the housing 100, so that the heat generated by the server can be dissipated to the outside of the housing 100 through the heat dissipation holes 150. Specifically, the heat dissipation holes 150 can be provided on the top, bottom and side walls of the housing 100, and this application does not impose any restrictions on this. A dust net can also be provided at the heat dissipation holes 150 to prevent external dust from entering the installation cavity 110 of the housing 100 to a certain extent.
[0040] The door 200 is movably disposed on the installation opening 120 of the box 100 to block at least a portion of the installation opening 120, thereby closing the installation cavity 110. In this way, the server can be enclosed in the installation cavity 110 of the box 100 to protect the server.
[0041] The door lock assembly 300 is mounted on the door 200 and is configured to lock the door 200 with the cabinet 100. Specifically, when the door 200 closes the mounting opening 120 of the cabinet 100, the door lock assembly 300 can secure the door 200 relative to the cabinet 100, thereby maintaining the door 200's position with the mounting opening 120 closed. The door lock assembly 300 includes a key 340, which can be used to unlock the door lock assembly 300, allowing the door 200 to move relative to the cabinet 100 until the mounting opening 120 is opened. This prevents the door 200 from being easily opened, making the server more secure when installed in the mounting cavity 110 of the cabinet 100.
[0042] The door 200 may be made of metal, so that the door 200 has better structural strength, so that the door 200 can better seal the installation opening 120 of the box 100 to fully protect the server disposed in the installation cavity 110 .
[0043] The alarm assembly 400 includes an alarm unit 410 and a trigger unit 420, wherein the alarm unit 410 is disposed on the housing 100, and the trigger unit 420 is movably disposed on the housing 100. The trigger unit 420 is configured to be driven to move toward the alarm unit 410, or driven to move away from the alarm unit 410. When the trigger unit 420 moves toward the alarm unit 410 to trigger the alarm unit 410, the alarm unit 410 may generate an alarm signal. When the trigger unit 420 moves away from the alarm unit 410, the trigger unit 420 moves away from the alarm unit 410, so that the trigger unit 420 does not trigger the alarm unit 410 to generate an alarm signal.
[0044] Specifically, when the door body 200 is locked with the housing 100, the door body 200 closes the installation opening 120 and is in a preset position. When the door body 200 moves from the preset position in a direction away from the installation opening 120, the trigger portion 420 can be driven to move toward the alarm portion 410 until the trigger portion 420 triggers the alarm portion 410 and generates an alarm signal. When the door body 200 moves from the preset position in a direction toward the installation opening 120, the trigger portion 420 can be driven to move away from the alarm portion 410, so that a preset gap exists between the trigger portion 420 and the alarm portion 410, so that the trigger portion 420 does not trigger the alarm portion 410 and generate an alarm signal. In addition, when the trigger part 420 and the alarm part 410 have a preset gap, when the door body 200 moves in the direction away from the installation port 120, the trigger part 420 can maintain a preset gap with the alarm part 410 until the door body 200 opens the installation port 120 of the box body 100, and the alarm part 410 will not generate an alarm signal.
[0045] Therefore, when the door lock assembly 300 is damaged and the door body 200 is directly pulled in a direction away from the installation opening 120 to open the installation opening 120, the trigger part 420 is driven to move toward the alarm part 410 until the trigger part 420 triggers the alarm part 410 to generate an alarm signal. In this way, the user can be informed that the installation opening 120 of the box body 100 has been opened and there is a risk of damage to the server in the installation cavity 110, thereby achieving the purpose of fully protecting the server in the installation cavity 110.
[0046] When the user needs to open the installation port 120 of the box body 100 normally, the user can first push the door body 200 toward the installation port 120, so that the door body 200 can drive the trigger part 420 to move to a preset gap with the alarm part 410, so that the trigger part 420 will not trigger the alarm part 410 and generate an alarm signal. Subsequently, the user can pull the door body 200 to move the door body 200 back to the installation port 120 until the door body 200 opens the installation port 120. During this process, the trigger part 420 will not trigger the alarm part 410 and generate an alarm signal, and the user can maintain the server normally. In this way, the structural strength requirements of the server protection device of the present application can be relatively low, making the structure of the server protection device relatively simpler and more compact, and the preparation cost is relatively lower.
[0047] In the server protection device proposed in the present application, the installation cavity 110 of the box body 100 can be used to accommodate the server. After the door body 200 moves to close the installation opening 120, the door lock assembly 300 can lock the door body 200 with the box body 100, so that the server is enclosed in the installation cavity 110 of the box body 100, thereby achieving the purpose of protecting the server. When the door body 200 moves directly from the preset position in a direction away from the installation opening 120, the trigger part 420 will trigger the alarm part 410 to issue an alarm signal. When the door body 200 moves from the preset position toward the installation opening 120, the door body 200 can drive the trigger part 420 to have a preset distance with the alarm part 410, so that the trigger part 420 will not trigger the alarm part 410, and accordingly, no alarm signal will be generated. In this way, when the door lock assembly 300 is damaged and causes the door body 200 to open the installation opening 120, the trigger part 420 can trigger the alarm part 410 to generate an alarm signal, thereby effectively reminding the user that the server in the box 100 is at risk of being damaged, so that the server protection device of the present application has a better protection effect on the server.
[0048] In some embodiments, reference Figure 4As shown, the door lock assembly 300 of the present application may include a fixing base 310, a lock core 320, and a hanging plate 330. The fixing base 310 may be disposed on the door body 200 and located on the side of the door body 200 facing away from the mounting opening 120 of the housing 100. The lock core 320 is interposed between the fixing base 310 and the door body 200, such that one end of the lock core 320 extends to the side of the door body 200 facing the mounting opening 120. The hanging plate 330 is connected to the side of the lock core 320 extending from the door body 200 facing the mounting opening 120. A key 340 compatible with the door lock assembly 300 is inserted into the lock core 320 and rotated, causing the lock core 320 to drive the hanging plate 330 to rotate. When the hanging plate 330 rotates clockwise, the hanging plate 330 is misaligned with the baffle structure within the housing 100, allowing the door body 200 to rotate freely relative to the housing 100. The hanging plate 330 can be rotated counterclockwise to make the hanging plate 330 opposite to the baffle structure of the box body 100, so that the hanging plate 330 and the baffle structure limit each other, so that the door body 200 cannot rotate relative to the box body 100, and the door body 200 and the box body 100 are locked.
[0049] In addition, the door lock assembly 300 of the present application can also adopt an electronic lock structure, such as a fingerprint lock, a vein lock, and a face recognition door lock structure, which can effectively lock the door body 200 and the box body 100. The specific structure of the door lock assembly 300 is not limited.
[0050] In some embodiments, reference Figures 2 to 3 As shown, the door body 200 of the present application can be rotatably connected to the box body 100. Specifically, a fixed plate 130 is provided at the edge of the installation opening 120 of the box body 100, and a rotating shaft 140 is connected to the fixed plate 130. The rotating shaft 140 is arranged along the height direction of the box body 100. A connecting block 210 is connected to the door body 200. The connecting block 210 is located at the edge of the door body 200 and is sleeved on the rotating shaft 140. The connecting block 210 can rotate around the rotating shaft 140, so that the door body 200 can rotate around the rotating shaft 140, and ultimately the door body 200 can rotate relative to the box body 100. When the door body 200 rotates toward the installation opening 120, the installation opening 120 can be closed. When the door body 200 rotates away from the installation opening 120, the installation opening 120 can be opened.
[0051] Of course, in other embodiments, a rotating shaft structure can also be provided on the door body 200, and an opening for the rotating shaft structure to pass through can be provided on the edge of the box body 100. The rotating shaft structure of the door body 200 can be rotatably provided in the opening of the box body 100, so that the door body 200 can also rotate relative to the box body 100.
[0052] In some embodiments, reference Figure 1 and Figure 4As shown, in order to drive the trigger portion 420 to move toward the alarm portion 410 to trigger the alarm portion 410, the server protection device of the present application may further include a drive assembly 500. The drive assembly 500 may be disposed on the housing 100. When the door 200 rotates from a preset position away from the mounting opening 120, the drive assembly 500 may drive the trigger portion 420 to move toward the alarm portion 410 to trigger the alarm portion 410, thereby generating an alarm signal.
[0053] Specifically, when the door lock assembly 300 is damaged and the door body 200 is directly pulled to move in a direction away from the installation port 120 to open the installation port 120, the driving assembly 500 can drive the trigger part 420 to move toward the alarm part 410 until the trigger part 420 triggers the alarm part 410 to generate an alarm signal. In this way, the user can be informed that the installation port 120 of the box body 100 has been opened and there is a risk of damage to the server in the installation cavity 110, thereby achieving the purpose of fully protecting the server in the installation cavity 110.
[0054] In some embodiments, reference Figure 4 As shown, in order for the driving assembly 500 to drive the trigger portion 420 to move toward the alarm portion 410, the driving assembly 500 may include a first driving portion 510 and a guide portion 520. The first driving portion 510 is connected to the trigger portion 420 and is configured to drive the trigger portion 420 to move toward the alarm portion 410, so that the trigger portion 420 can move to trigger the alarm portion 410 and generate an alarm signal.
[0055] The trigger portion 420 is movably disposed on the guide portion 520, allowing the trigger portion 420 to move relative to the guide portion 520. The guide portion 520 is configured to guide the trigger portion 420 in directions toward and away from the alarm portion 410. In this way, the guide portion 520 can limit the travel of the trigger portion 420, preventing the trigger portion 420 from deflecting when moving toward or away from the alarm portion 410, and allowing the trigger portion 420 to maintain movement toward or away from the alarm portion 410. This ensures that the trigger portion 420 accurately triggers the alarm portion 410 when moving toward it, and maintains a predetermined gap between the trigger portion 420 and the alarm portion 410 when moving away from it, preventing the trigger portion 420 from accidentally triggering the alarm portion 410 and ultimately improving the stability and reliability of the server protection device of the present application.
[0056] In some embodiments, reference Figure 4As shown, in order for the guide portion 520 to guide the trigger portion 420, the guide portion 520 may be provided with a guide groove 521. The guide groove 521 extends along the direction of the trigger portion 420 toward the alarm portion 410. It should be understood that since the direction of the trigger portion 420 toward the alarm portion 410 and the direction of the trigger portion 420 away from the alarm portion 410 are opposite to each other, the guide groove 521 also extends along the direction of the trigger portion 420 away from the alarm portion 410.
[0057] When the trigger portion 420 is disposed within the guide groove 521 of the guide portion 520, the inner wall of the guide groove 521 can serve to limit the trigger portion 420, so that the trigger portion 420 can only move in a direction toward or away from the alarm portion 410. The first drive portion 510 can be an elastic structural member, with one end of the first drive portion 510 connected to the guide portion 520, and the other end of the first drive portion 510 can be connected to the trigger portion 420. The end of the trigger portion 420 facing away from the first drive portion 510 can be opposite to the installation opening 120 of the housing 100. Accordingly, when the door 200 closes the installation opening 120, the end of the trigger portion 420 facing away from the first drive portion 510 can be opposite to the door 200.
[0058] When the door body 200 is in a preset position, the door body 200 abuts against the trigger portion 420, causing the trigger portion 420 to squeeze the first drive portion 510, which exerts an elastic force. At this point, because the door body 200 remains locked to the housing 100, the first drive portion 510 can maintain its elastic force, and the position of the trigger portion 420 remains unchanged. When the door body 200 moves in a direction away from the mounting opening 120 of the housing 100, the door body 200 no longer abuts against the trigger portion 420, causing the trigger portion 420 to no longer squeeze the first drive portion 510. The elastic force of the first drive portion 510 can drive the trigger portion 420 toward the alarm portion 410, thereby triggering the alarm portion 410 and generating an alarm signal.
[0059] Thus, when the door body 200 rotates from the preset position directly back to the installation opening 120 of the box body 100 , the elastic force of the first driving part 510 can drive the triggering part 420 to move toward the alarm part 410 to trigger the alarm part 410 .
[0060] In some embodiments, the notch of the guide groove 521 of the guide portion 520 of the present application is located at the end of the guide portion 520, and one end of the first driving portion 510 is connected to the bottom wall of the guide groove 521. The alarm portion 410 can be provided on the outer wall of the guide portion 520, and the alarm portion 410 has an alarm portion 411, which can be passed through the outer wall of the guide portion 520 to the guide groove 521. The trigger portion 420 has a trigger portion 422, which is located on the side wall of the trigger portion 420. When the trigger portion 420 moves along the guide groove 521, the trigger portion 422 of the trigger portion 420 contacts the alarm portion 411 of the alarm portion 410, so that the trigger portion 420 can trigger the alarm portion 410 and send an alarm signal.
[0061] One end of the trigger portion 420 may also be provided with an abutment platform 423, and one end of the first driving portion 510 abuts against the abutment platform 423, allowing the first driving portion 510 to connect with the trigger portion 420. The area of the side of the abutment platform 423 opposite the first driving portion 510 is larger than the area of the end of the first driving portion 510. By providing the abutment platform 423, the first driving portion 510 and the trigger portion 420 are stably and reliably connected, preventing the first driving portion 510 from deflecting during deformation.
[0062] In some embodiments, it should be understood that since the first driving portion 510 is an elastic structural member, if the door body 200 no longer abuts against the trigger portion 420, the first driving portion 510 will drive the trigger portion 420 to move toward the alarm portion 410. Figures 4 to 5 As shown, in order to prevent the first driving part 510 from pushing the trigger part 420 toward the alarm part 410 when the door body 200 drives the trigger part 420 to move to a preset distance from the alarm part 410, the server protection device of the present application may also be provided with a limit assembly 600.
[0063] The limit assembly 600 is disposed on the housing 100. When the trigger portion 420 moves away from the alarm portion 410 until a predetermined distance exists between the trigger portion 420 and the alarm portion 410, the limit assembly 600 limits the trigger portion 420 in the direction toward the alarm portion 410. This prevents the trigger portion 420 from moving toward the alarm portion 410, allowing the preset distance between the trigger portion 420 and the alarm portion 410 to be maintained, thereby preventing the trigger portion 420 from accidentally triggering the alarm portion 410.
[0064] Specifically, when the user needs to open the door body 200 normally, they can first push the door body 200 from the preset position toward the installation opening 120. The door body 200 can then push the trigger portion 420 to move away from the alarm portion 410 to a preset distance. At this time, the limit assembly 600 can limit the trigger portion 420, preventing the trigger portion 420 from moving further and maintaining a preset distance from the alarm portion 410. The user can then pull the door body 200 to rotate it away from the installation opening 120 to open the installation opening 120 of the box body 100. Since the trigger portion 420 maintains a distance from the alarm portion 410, the trigger portion 420 will not trigger the alarm portion 410 to generate an alarm signal.
[0065] When the door body 200 closes the installation opening 120 of the box body 100 again, the limit assembly 600 can be controlled to release the limit on the trigger part 420, and the elastic force of the first drive part 510 can drive the trigger part 420 toward the alarm part 410 until the trigger part 420 and the door body 200 are offset.
[0066] In some embodiments, reference Figure 5 As shown, in order to limit the triggering part 420, the limiting assembly 600 can be configured to include a limiting part 610 and a second driving part 620. The second limiting part 610 is provided on the box body 100, and the second driving part 620 is connected to the limiting part 610.
[0067] When the door body 200 moves from the preset position toward the installation opening 120 of the box body 100, so that the door body 200 drives the trigger portion 420 to move away from the alarm portion 410 until the trigger portion 420 and the alarm portion 410 have a preset distance therebetween, the second driving portion 620 drives the limiting portion 610 to move until it abuts against the trigger portion 420, so that the trigger portion 420 and the alarm portion 410 maintain the preset distance therebetween. Specifically, the limiting portion 610 can limit the trigger portion 420 in the direction toward the alarm portion 410, so that the trigger portion 420 cannot move toward the alarm portion 410.
[0068] In some embodiments, reference Figure 5 As shown, the position-limiting assembly 600 of the present application may further include a movable plate 630. The position-limiting portion 610 may be a rod-shaped structural member, and the position-limiting portion 610 is movably disposed through the outer wall of the housing 100, allowing the position-limiting portion 610 to move relative to the housing 100. One end of the position-limiting portion 610 is connected to the movable plate 630, and the movable plate 630 is opposite the outer wall of the housing 100. The other end of the position-limiting portion 610 is opposite the side wall of the triggering portion 420. The second driving portion 620 is an elastic structural member, and the second driving portion 620 is located between the movable plate 630 and the outer wall of the housing 100.
[0069] In some embodiments, reference Figure 5As shown, the limiting assembly 600 of the present application may also include a positioning plate 640, which can be disposed on the outer wall of the housing 100, with the second drive unit 620 located between the movable plate 630 and the positioning plate 640. The provision of the positioning plate 640 allows the second drive unit 620 to be more stably disposed and prevents the second drive unit 620 from rubbing against the side wall of the housing 100, thereby protecting the side wall of the housing 100. The positioning plate 640 is a circular structural member, which allows the positioning plate 640 to adapt to the structure of the end of the second drive unit 620, thereby improving the stability of the second drive unit 620.
[0070] In some embodiments, reference Figure 5 As shown, to enable the limiting portion 610 to better limit the position of the trigger portion 420, a limiting groove 421 can be defined on the sidewall of the trigger portion 420. A limiting bead 611 is provided on the end of the limiting portion 610 facing away from the movable plate 630. Specifically, the limiting bead 611 is located on the side of the limiting portion 610 facing the outer wall of the trigger portion 420. When a predetermined distance is established between the trigger portion 420 and the alarm portion 410, the second driving portion 620 drives the limiting portion 610 to move until the limiting bead 611 is embedded in the limiting groove 421. This allows the inner wall of the limiting groove 421 to abut against the limiting bead 611, causing the limiting bead 611 to be stuck in the limiting groove 421, thereby enabling the limiting portion 610 to limit the position of the trigger portion 420.
[0071] Specifically, when the distance between the trigger portion 420 and the alarm portion 410 is less than a predetermined distance, the retaining bead 611 contacts the sidewall of the trigger portion 420, and the second retaining portion 610 is compressed, exerting an elastic force. The retaining bead 611 is spherical and rotatably connected to the retaining portion 610. This allows the retaining bead 611 to roll relative to the trigger portion 420, regardless of whether the trigger portion 420 moves toward or away from the alarm portion 410. This reduces the resistance between the retaining bead 611 and the trigger portion 420, allowing the trigger portion 420 to move smoothly.
[0072] When the trigger part 420 moves to a preset distance from the alarm part 410, the elastic force of the second driving part 620 can drive the limiting part 610 to move toward the trigger part 420, so that the limiting bead 611 can enter the limiting groove 421, thereby making the limiting bead 611 press against the trigger part 420, and the trigger part 420 cannot continue to move, so as to maintain a preset distance from the alarm part 410.
[0073] It should be understood that since the limiting bead 611 is a spherical structure, the limiting groove 421 of the trigger portion 420 is also a spherical groove structure, so that the inner wall of the limiting groove 421 is a curved surface. Of course, the limiting bead 611 can also adopt a cubic structure, and the limiting groove 421 can also be a cubic structure groove.
[0074] In some embodiments, reference Figure 2 As shown, in order to allow the door body 200 to still move toward the installation opening 120 of the box body 100 when it is in the preset position, the server protection device of the present application can also be provided with a sealing portion 700. The sealing portion 700 is provided at the installation opening 120. When the door body 200 closes the installation opening 120, the sealing portion 700 is located between the door body 200 and the box body 100. The sealing portion 700 can improve the sealing performance when the door body 200 closes the installation opening 120.
[0075] Specifically, the sealing portion 700 can be an annular structural member and is distributed along the circumference of the mounting opening 120 at the edge of the housing 100. The sealing portion 700 is a deformable structural member, so that the sealing portion 700 and the housing 100 can be tightly connected to prevent a gap from forming between the sealing portion 700 and the housing 100. When the door 200 closes the mounting opening 120, the sealing portion 700 is also tightly connected to the door 200 to prevent a gap from forming between the sealing portion and the door 200. This ensures a tight seal when the door 200 closes the mounting opening 120 of the housing 100, preventing foreign matter from entering the mounting cavity 110 of the housing 100 and affecting the operation of the server.
[0076] Since the sealing part 700 is a deformable structural part, when the door body 200 moves from a preset position toward the installation port 120 of the box body 100, the door body 200 can squeeze the sealing part 700, causing the sealing part 700 to deform. In this way, the sealing part 700 will not hinder the movement of the door body 200, so that the door body 200 can drive the trigger part 420 to move to a preset distance from the alarm part 410.
[0077] Specifically, the sealing portion 700 is an elastic structural member and has a hollow structure. When the door body 200 moves from a preset position toward the installation opening 120 of the housing 100 and squeezes the sealing portion 700, the sealing portion 700 can exert an elastic force. When the door body 200 moves back to the preset position in a direction away from the installation opening 120, the sealing portion 700 can recover its deformation due to its own elastic force. In this way, when the door body 200 moves again from the preset position toward the installation opening 120 of the housing 100, the door body 200 can squeeze the sealing portion 700 again.
[0078] In some embodiments, reference Figure 6As shown, the server protection device of the present application may also be provided with a processing module 810 and a communication module 820. Among them, the processing module 810 is electrically connected to the alarm unit 410. When the trigger unit 420 triggers the alarm unit 410 and generates an alarm signal, the alarm signal can be transmitted to the processing module 810. The processing module 810 can process the alarm signal and convert it into alarm information. The processing module 810 is also electrically connected to the communication module 820. The processing module 810 can transmit the generated alarm information to the cloud server 850 through the communication module 820, and the cloud server 850 will then send the alarm information to the user's receiving device 860, such as mobile phones and computers. In this way, the user can learn that the door body 200 opens the installation port 120 of the box body 100, and the server in the installation cavity 110 is at risk of being damaged.
[0079] In some embodiments, the server protection device of the present application may also be provided with a solar panel 830 and a battery 840. The solar panel 830 is electrically connected to the battery 840. When the server protection device of the present application is placed in an outdoor environment, the solar panel 830 can generate electricity through solar energy and store the electricity in the battery 840. The battery 840 can also be electrically connected to the processing module 810, the communication module 820, and the alarm unit 410, so that the battery 840 can power the processing module 810, the communication module 820, and the alarm unit 410, thereby reducing the energy consumption of the server protection device of the present application.
[0080] In addition, the processing module 810, the communication module 820 and the alarm unit 410 can also be connected to the mains electricity, so that the server protection device of the present application can operate stably.
[0081] The above is a detailed introduction to a server protection device 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 ideas 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, characterized in that: include: The box (100) has a mounting cavity (110) and a mounting opening (120), wherein the mounting cavity (110) is used to accommodate the server; A door body (200) is movably connected to the box body (100), and the door body (200) is configured to move to open or close the installation opening (120); a door lock assembly (300) disposed on the door body (200), the door lock assembly (300) being configured to lock the door body (200) and the box body (100); when the door body (200) and the box body (100) are locked, the door body (200) is located at a preset position; An alarm component (400) comprises an alarm portion (410) and a trigger portion (420), wherein the alarm portion (410) is disposed on the box (100), and the trigger portion (420) is movably disposed on the box (100); When the door body (200) moves from the preset position in a direction away from the installation opening (120) to open the installation opening (120), the triggering portion (420) is driven to move toward the alarm portion (410) to trigger the alarm portion (410), so that the alarm portion (410) issues an alarm. When the door body (200) moves from the preset position toward the installation opening (120), the door body (200) drives the trigger part (420) to move away from the alarm part (410) to a preset distance from the alarm part (410); The server protection device further comprises a driving assembly (500), the driving assembly (500) comprising a first driving portion (510) and a guide portion (520); the guide portion (520) has a guide groove (521), the trigger portion (420) is movably arranged in the guide groove (521), the first driving portion (510) is an elastic structural member, one end of the first driving portion (510) is connected to the inner wall of the guide groove (521), the other end of the first driving portion (510) is connected to the trigger portion (420), and the end of the trigger portion (420) facing away from the first driving portion (510) is opposite to the installation opening (120); When the door body (200) is in the preset position, the door body (200) abuts against the trigger portion (420), and the trigger portion (420) compresses the first driving portion (510), so that the first driving portion (510) has an elastic force.
2. The server protection device according to claim 1, characterized in that: The driving assembly (500) is arranged on the box (100); When the door body (200) moves from the preset position in a direction away from the installation opening (120), the driving assembly (500) drives the triggering portion (420) to move toward the alarm portion (410) to trigger the alarm portion (410).
3. The server protection device according to claim 2, characterized in that: The first driving part (510) is connected to the trigger part (420), and the first driving part (510) is configured to drive the trigger part (420) to move toward the alarm part (410); The trigger portion (420) is movably arranged on the guide portion (520), and the guide portion (520) is configured to guide the trigger portion (420) in directions of the trigger portion (420) toward the alarm portion (410) and away from the alarm portion (410).
4. The server protection device according to claim 1, wherein: The server protection device further comprises a limiting component (600), wherein the limiting component (600) is arranged on the box (100); When the trigger portion (420) moves away from the alarm portion (410) until a preset distance exists between the trigger portion (420) and the alarm portion (410), the limiting assembly (600) limits the trigger portion (420) in a direction from the trigger portion (420) toward the alarm portion (410).
5. The server protection device according to claim 4, characterized in that: The limiting assembly (600) comprises a limiting portion (610) and a second driving portion (620), wherein the second driving portion (620) is disposed on the box body (100), and the second driving portion (620) is connected to the limiting portion (610); When the trigger portion (420) and the alarm portion (410) have a preset distance, the second driving portion (620) drives the limiting portion (610) to move to abut against the trigger portion (420), so that the trigger portion (420) and the alarm portion (410) maintain the preset distance.
6. The server protection device according to claim 5, characterized in that: The limiting assembly (600) further includes a movable plate (630), the limiting portion (610) is movably arranged on the side wall of the box body (100), one end of the limiting portion (610) is connected to the movable plate (630), and the second driving portion (620) is an elastic structural member, and the second driving portion (620) is located between the movable plate (630) and the side wall of the box body (100).
7. The server protection device according to claim 6, characterized in that: A limiting groove (421) is provided on a side wall of the trigger portion (420), and a limiting bead (611) is provided at one end of the limiting portion (610) facing away from the movable plate (630). When a preset distance is provided between the trigger portion (420) and the alarm portion (410), the second driving portion (620) drives the limiting portion (610) to move until the limiting bead (611) is embedded in the limiting groove (421).
8. The server protection device according to any one of claims 1 to 7, characterized in that: The server protection device further comprises a sealing portion (700), the sealing portion (700) being arranged at the installation opening (120); when the door body (200) closes the installation opening (120), the sealing portion (700) is located between the door body (200) and the box body (100); the sealing portion (700) is a deformable structural member; When the door body (200) moves toward the installation opening (120), the sealing portion (700) is compressed by the door body (200) and deformed.
9. The server protection device according to any one of claims 1 to 7, characterized in that: The server protection device further comprises a processing module (810) and a communication module (820), wherein the processing module (810) is electrically connected to the alarm unit (410), and the communication module (820) is electrically connected to the processing module (810); The processing module (810) is configured to receive the alarm signal generated by the alarm unit (410) and send the alarm signal to the communication module (820), and the communication module (820) is configured to transmit the alarm signal to a receiving device of a user.
Citation Information
Patent Citations
Big data computer cabinet with anti-theft alarm mechanism
CN218497594U