Automatic aging power-off system based on network security product

By designing a power-off structure and an intelligent sensor network, the problems of loose connections and wear in cybersecurity product testing were solved, achieving more efficient testing and production.

CN121125369APending Publication Date: 2025-12-12东莞市智微智能科技有限公司
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Patent Information

Application Number
CN202511197660.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-26
Publication Date
2025-12-12

AI Technical Summary

Technical Problem

During the aging test of existing network security products, frequent cable replacements not only waste time, but also cause loose connections due to frequent plugging and unplugging, affecting test stability and production efficiency. At the same time, the network cables suffer severe wear and tear.

Method used

It adopts a power-off structure consisting of an SFP cage, an SFP extension board, an SFP base, and a docking base. The connection stability is increased through the cooperation of the docking components and mounting components. The automatic aging power-off function is realized through an intelligent sensor network and a programmable logic control module, ensuring the stability and efficiency of the test.

Benefits of technology

It improves the stability and production efficiency of cybersecurity product testing, reduces line wear, saves testing time, and is expected to increase production efficiency by more than 20%.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides an automatic aging power-off system based on a network security product. The automatic aging power-off system based on the network security product comprises network security equipment; the multiple equipment interfaces are located on one face of the network security equipment, the back face of each set of equipment interfaces is provided with a power-off structure, the power-off structure comprises an SFP cage, an SFP extension plate, an SFP base and a butt joint base, one end of the butt joint base is provided with a port allowing a stabilizing piece and a butt joint piece to be inserted, the SFP base is located above the SFP cage, and the SFP extension plate is connected with the SFP cage. The back surface of the power-off structure is provided with a plurality of network cable heads, and one end of each network cable head is provided with a network cable. According to the automatic aging power-off system based on the network security product, a test requirement on a 100-meter network cable is guaranteed, and meanwhile, by optimizing and manufacturing the structure and the operation convenience of an extension protection plate handle type jig, the time for mounting, dismounting and adjusting is shortened, the production efficiency is improved, and the predicted production efficiency can be improved by more than 20%.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of network security product automatic aging power-off, and particularly relates to a network security product automatic aging power-off system. BACKGROUND

[0002] Network security products are a collection of tools for protecting network system hardware, software and data security, resisting network attacks through multi-dimensional technologies such as firewalls, intrusion detection systems, data encryption, and ensuring the confidentiality, integrity and availability of information processing and transmission, and its core mechanisms include access control, security audit, virus prevention, etc., forming a dynamic protection system of "prevention-monitoring-response-recovery".

[0003] In the production and testing process of optoelectronic communication devices, the extension fixture plays a crucial role, which is used to extend the optoelectronic communication devices. The production and testing of communication products use optoelectronic communication devices, i.e. optical modules, which are worn out, short-circuited and pin broken due to long-term testing. In order to save costs, a PCBA similar in size and gold finger to the optical module is specially made at the front end of the optoelectronic communication device to extend the protection effect and prolong the service life of the optoelectronic communication device module. Before the network security product is shipped, it needs to be aged and tested, and the device needs to be filled into the aging system, and then sent to the aging room. The temperature of the aging room is 35 to 45 degrees. The network security product aging time is short or long, and many people are needed to mark and confirm the aging abnormalities. In order to improve the production efficiency, the PDU automatic power-off test is introduced to perform the severe test of 12H*3, 24H*3, and the first round of severe LTP pressure test, TINA (12H*3), megachip 24H*3, D2000 24H*3, current switch packet test, using 100 meters of network cable to connect the handle to test the product. When the production test is completed, 2*4 port products are tested, and 2*6 port products need to be disassembled and replaced with 2*6 handles.

[0004] The frequent line replacement time in the testing process is long, which is easy to cause the connection to be loose, and will affect the testing and production efficiency because of the disconnection. In addition, the long-term test of the plug handle will cause the network cable to be worn and damaged, which will cause the network cable to be cut and replaced with a new crystal head.

[0005] Therefore, it is necessary to provide a network security product automatic aging power-off system to solve the above technical problems. SUMMARY

[0006] The present application provides a network security product automatic aging power-off system, which solves the problem of frequent line replacement in the existing switch packet test, which not only wastes time but also causes the connection to be loose, thereby affecting the testing and production efficiency, and the frequent plugging and unplugging increases the wear and tear.

[0007] To solve the above technical problems, the automatic aging power-off system based on a network security product provided by the application comprises a network security device;

[0008] A plurality of device interfaces are located on one side of the network security device, and a power-off structure is mounted on the back of each group of device interfaces, wherein the power-off structure comprises an SFP cage, an SFP extension plate, an SFP base and a docking base, one end of the docking base is provided with an opening for inserting a stabilizing piece and a docking piece, the SFP base is located above the SFP cage, a plurality of network cable heads are mounted on the back of the power-off structure, one end of each network cable head is provided with a network cable, the other end of each network cable head is provided with a docking piece, and the other end of each network cable head is provided with a stabilizing piece with a limiting hole;

[0009] Two groups of mounting assemblies are mounted on the top and the bottom of the power-off structure near one end, respectively, a plurality of fixing rings are mounted on the top of the power-off structure near the other end, a spring is mounted on the top of each fixing ring, and a limiting bolt is fixedly connected to the top end of each spring; one side of the network security device is provided with two groups of docking assemblies;

[0010] The fixing base is connected to the connecting portion of the SFP cage and the docking base through a conductor, a plurality of device interfaces can be combined into a group according to requirements, the SFP extension plate in the power-off structure is inserted into the interior of the device interface, one end of the limiting bolt is inserted into the limiting hole to fix the stabilizing piece, the limiting bolt is located in the inner ring of the spring, the limiting bolt penetrates through the top of the docking base and the stabilizing piece to be clamped with each other, the positions of the docking assembly and the mounting assembly correspond to each other, and the stability of the connection between the power-off structure and the network security device can be ensured after the two are attracted to each other. The structure design, connecting components and operation convenience of the existing optical communication device extension jig PCBA are improved, the problems of wear, short circuit and pin breakage in the existing optical communication device module gold finger part are effectively solved, the performance and use effect of the jig are improved, the improvement scheme has feasibility and practicality, and can provide convenience and strong support for the production and testing of optical communication devices.

[0011] Preferably, the docking assembly comprises a fixing bolt, a fixing piece and a magnetic block, the fixing bolt is used for fixing the fixing piece on one side of the network security device, and the magnetic block is used for being attracted to the mounting assembly.

[0012] Preferably, the power-off structure operation module comprises a power input module, a super capacitor energy storage module, a programmable logic control module, an optimized relay module and an upper computer module, the power input module provides power for the super capacitor energy storage module and the network equipment, the output end of the super capacitor energy storage module is connected with the input end of the programmable logic control module, the output end of the programmable logic control module is connected with the input end of the upper computer module, and the output end of the programmable logic control module is connected with the input end of the optimized relay module.

[0013] Preferably, the mounting assembly comprises a bottom plate and a docking rack, the bottom plate is used for fixing the top and bottom of the power-off structure;

[0014] The shape of the docking rack is referenced Figure 4 .

[0015] Preferably, the top of the power-off structure is provided with a fixing base, and a plurality of through holes are formed in the top of the fixing base;

[0016] The through holes are convenient for the monitoring head of the monitoring assembly to pass through.

[0017] Preferably, the top of the fixing base is provided with a monitoring assembly, and the monitoring assembly comprises a mounting rack, a monitoring component and a monitoring head, the mounting rack is used for mounting the monitoring component with the monitoring head on the fixing base;

[0018] The monitoring assembly comprises a current sensor, a voltage sensor, a temperature sensor and a humidity sensor.

[0019] Preferably, the outer surface of the network security equipment is provided with a fixing frame at one position, and one side of the fixing frame is provided with a protection frame.

[0020] Preferably, the other side of the protection frame is provided with a sealing cover through a magnetic attraction structure, and one side of the sealing cover is provided with a plurality of wire ports.

[0021] Preferably, the top of the protection frame is provided with a heat dissipation component, and the top of the heat dissipation component is provided with a protection plate;

[0022] The protection plate is provided with a hole, which is convenient for air circulation, and the heat dissipation component comprises a shell and a heat dissipation fan.

[0023] Preferably, the bottom of the protection frame is provided with a filter frame, and the filter frame comprises a frame body and an interception component.

[0024] The bottom of the filter frame is also provided with a protection plate.

[0025] Compared with the related art, the automatic aging power-off system based on the network security product has the following beneficial effects:

[0026] This invention provides an automatic aging and power-off system for network security products. To improve the testing stability and efficiency of network security products and reduce line wear, a power-off structure consisting of an SFP cage, an SFP extension board, an SFP base, and a docking base is used to connect the network cable head and the network security equipment, facilitating cable replacement. After the power-off structure is inserted into the device interface on the network security equipment, the docking and mounting components work together to increase connection stability. The stabilizing plate on the network cable head is inserted into the socket at one end of the docking base, and with the help of a spring and a limit bolt, the network cable head with the docking plate is fixed in the docking base, preventing wear at the connection point caused by frequent cable replacements from affecting testing stability. When it is necessary to remove the network cable head, simply pull the limit bolt to release the restriction on the stabilizing plate on the network cable head, allowing the operator to easily remove the network cable head. This design uses a 1-to-2 straight-through interface to connect the cable output from the sealing machine to the RJ45 1-to-2 straight-through inlet of the fixture. The device can simultaneously connect to 2*4 and 2*6 test handles at two outputs. Regardless of whether 2*4 or 2*6 products are being tested, simply switch between 2*4 and 2*6 by unplugging and plugging the middle jumper of the RJ45 fixture. This eliminates the need for manual back-and-forth disassembly of 2*4 and 2*6 handles, which results in unstable testing. This saves testing time, ensures functionality, and improves testing efficiency. It also provides reliable 100-meter network cable for testing. Furthermore, by optimizing the structure and ease of operation of the extended protection board handle fixture, installation, disassembly, and adjustment time are reduced, increasing production efficiency by an estimated 20% or more. Attached Figure Description

[0027] Figure 1 A schematic diagram of the structure of the first embodiment of the automatic aging and power-off system based on cybersecurity products provided by the present invention;

[0028] Figure 2 A schematic diagram of the SFP cage is provided for this invention;

[0029] Figure 3 Provided for the present invention Figure 2 An enlarged view of point A shown;

[0030] Figure 4 Provided for the present invention Figure 2 An enlarged view of point B shown;

[0031] Figure 5 A flowchart illustrating the power-off structure for this invention is provided.

[0032] Figure 6 A schematic diagram of the structure of the second embodiment of the automatic aging and power-off system based on network security products provided by the present invention;

[0033] Figure 7 A schematic diagram of the monitoring component is provided for this invention;

[0034] Figure 8 Provided for the present invention Figure 7 An enlarged view of point C shown;

[0035] Figure 9 A schematic diagram of the structure of the second embodiment of the automatic aging and power-off system based on network security products provided by the present invention;

[0036] Figure 10 A schematic diagram of the magnetic attraction structure is provided for this invention.

[0037] The diagram is labeled as follows: 1. Network security equipment; 2. Power-off structure; 201. SFP cage; 202. SFP extension plate; 203. SFP base; 204. Dating base; 3. Dating assembly; 301. Fixing bolt; 302. Fixing plate; 303. Magnetic block; 4. Equipment interface; 5. Mounting assembly; 501. Base plate; 502. Dating frame; 6. Network cable end; 7. Fixing ring; 8. Spring; 9. Limit bolt; 10. Limiting hole; 11. Dating plate; 12. Stabilizing plate; 13. Network cable; 14. Fixing base; 15. Monitoring assembly; 151. Mounting bracket; 152. Monitoring component; 153. Monitoring head; 16. Perforation; 17. Protective plate; 18. Heat dissipation component; 19. Fixing frame; 20. Protective frame; 21. Filter frame; 22. Sealing cover; 23. Magnetic structure; 24. Cable routing port. Detailed Implementation

[0038] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0039] Please refer to the following: Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5 ,in, Figure 1 A schematic diagram of the structure of the first embodiment of the automatic aging and power-off system based on cybersecurity products provided by the present invention; Figure 2 A schematic diagram of the SFP cage is provided for this invention; Figure 3 Provided for the present invention Figure 2 An enlarged view of point A shown; Figure 4 Provided for the present invention Figure 2 An enlarged view of point B shown; Figure 5 A flowchart illustrating the power-off structure is provided for this invention. The automatic aging power-off system for cybersecurity products includes: cybersecurity device 1;

[0040] Multiple device interfaces 4 are located on one side of the network security device 1. Each set of device interfaces 4 has a power-off structure 2 installed on its back. The power-off structure 2 includes an SFP cage 201, an SFP extension board 202, an SFP base 203, and a docking base 204. One end of the docking base 204 has an opening for inserting a stabilizing plate 12 and a docking plate 11. The SFP base 203 is located above the SFP cage 201. Multiple network cable heads 6 are installed on the back of the power-off structure 2. One end of each network cable head 6 is equipped with a network cable 13, and the other end of each network cable head 6 is equipped with a docking plate 11. The other end of each network cable head 6 is equipped with a stabilizing plate 12 with a limit hole 10.

[0041] Two sets of mounting components 5 are respectively installed on the top and bottom of the power-off structure 2 near one end. Multiple fixing rings 7 are installed on the top of the power-off structure 2 near the other end. A spring 8 is installed on the top of each fixing ring 7. A limit bolt 9 is fixedly connected to the top of each spring 8. Two sets of docking components 3 are installed on one side of the network security device 1.

[0042] The fixed base 14 is located at the connection between the SFP cage and the docking base 204 via a conductor. Multiple device interfaces 4 can be grouped together as needed. The SFP extension plate 202 in the power-off structure 2 is inserted into the device interface 4. One end of the limit bolt 9 is inserted into the limit hole 10 to fix the stabilizing plate 12. The limit bolt 9 is located within the inner ring of the spring 8 and passes through the top of the docking base 204, engaging with the stabilizing plate 12. The docking assembly 3 and the mounting assembly 5 are positioned correspondingly. When they attract each other, the stability of the connection between the power-off structure 2 and the network security device 1 is ensured. By improving the structural design, connecting components, and operational convenience of the existing optoelectronic communication device extension fixture PCBA, the problems of wear, short circuits, and broken pins at the gold finger parts of the existing optoelectronic device modules can be effectively solved, improving the performance and usability of the fixture. This improvement solution is feasible and practical. The improved fixture provides convenient and powerful support for the production and testing of optoelectronic communication devices. During implementation, it is necessary to strictly follow the plan to ensure the smooth progress of the improvement work and the achievement of the expected results. The improved stability and reliability of the fixture reduces equipment maintenance and the cost of replacing optical devices, while simultaneously increasing product yield and reducing production costs. In the production and testing of optoelectronic communication devices, the fabrication of extension fixtures plays a crucial role. These fixtures are used to extend the optoelectronic communication devices. In the production and testing of communication products using optoelectronic communication devices (i.e., optical modules), long-term testing can lead to wear, short circuits, and broken pins at the module's gold fingers. To save costs, a PCBA of similar size and gold fingers to the optical module is specially fabricated at the front end of the optoelectronic communication device for extended protection, thus extending the lifespan of the optoelectronic communication device module. Therefore, improving existing extension fixtures has significant practical implications.

[0043] The docking assembly 3 includes a fixing bolt 301, a fixing plate 302, and a magnetic block 303. The fixing bolt 301 is used to fix the fixing plate 302 to one side of the network security device 1, and the magnetic block 303 is used to attract the mounting assembly 5.

[0044] The fixing plate 302 has a hole to facilitate the passing of the fixing bolt 301.

[0045] The power-off structure 2 operation module includes a power input module, a supercapacitor energy storage module, a programmable logic control module, an optimized relay module, and a host computer module. The power input module provides power to the supercapacitor energy storage module and network equipment. The output terminal of the supercapacitor energy storage module is connected to the input terminal of the programmable logic control module, the output terminal of the programmable logic control module is connected to the input terminal of the host computer module, and the output terminal of the programmable logic control module is connected to the input terminal of the optimized relay module.

[0046] The mounting assembly 5 includes a base plate 501 and a docking frame 502. The base plate 501 is used to fix 502 to the top and bottom of the power-off structure 2.

[0047] Shape reference for docking frame 502 Figure 4 .

[0048] The working principle of the automatic aging and power-off system based on cybersecurity products provided by this invention is as follows:

[0049] A power-off structure 2, consisting of an SFP cage 201, an SFP extension plate 202, an SFP base 203, and a docking base 204, connects the network cable head 6 and the network security device 1, facilitating cable replacement. After the power-off structure 2 is inserted into the device interface 4 on the network security device 1, the docking component 3 and the mounting component 5 work together to increase connection stability. The stabilizing plate 12 on the network cable head 6 is inserted into the socket at one end of the docking base 204. With the help of a spring 8 and a limit bolt 9, the network cable head 6 with the docking plate 11 is fixed in the docking base 204, preventing wear at the connection point from affecting test stability due to frequent cable replacement. When the network cable head 6 needs to be removed, simply pull the limit bolt 9 to release the restriction on the stabilizing plate 12 on the network cable head 6, allowing the operator to easily remove the network cable head 6.

[0050] The automatic aging and power-off system for cybersecurity equipment is powered by a power input module. Its core components include an intelligent sensor network, a programmable logic controller (PLC) module, a supercapacitor energy storage module, and an optimized relay module. These components work together to achieve automatic aging and power-off functionality. Current, voltage, temperature, and humidity sensors in the intelligent sensor network are distributed across key parts of the cybersecurity product and its power supply lines, collecting real-time electrical and environmental parameter data and transmitting them as analog or digital signals to the PLC module. The analog signals are converted to digital values ​​by the PLC module's built-in ADC. As the core control unit, the PLC module receives the sensor data and analyzes it according to preset programs and thresholds. If the current exceeds the upper limit of the normal range, the temperature exceeds the safety threshold, or the aging time reaches the predetermined value, the PLC module determines that the product is in an abnormal or aging-completed state and immediately issues a power-off signal through the output interface. When the power supply is normal, the supercapacitor energy storage module charges through a dedicated charging management chip. When the mains power is abnormal or the programmable logic controller (PLC) issues a power-off command, the supercapacitor discharges rapidly, providing short-term power to the PLC, some sensors, and other critical components and cybersecurity products, ensuring data storage and critical operations. The control signals from the PLC act on the optimized relay structure. The solid-state relay uses optocouplers to trigger semiconductor switching devices to achieve rapid contactless switching, reducing arcing and wear. The electromagnetic relay serves as a backup, ensuring normal power-off function in the event of a solid-state relay failure. The filtering and protection circuits in the control circuit can resist electromagnetic interference, ensuring reliable relay operation, thereby enabling precise power-off operations for cybersecurity products. In addition, the PLC also transmits the collected data and system status information to the host computer for real-time monitoring and management by operators.

[0051] Compared with related technologies, the automatic aging and power-off system for cybersecurity products provided by this invention has the following advantages:

[0052] To improve the stability and efficiency of network security product testing and reduce line wear, a power-off structure 2, consisting of an SFP cage 201, an SFP extension board 202, an SFP base 203, and a docking base 204, is used to connect the network cable head 6 to the network security device 1, facilitating cable replacement. After the power-off structure 2 is inserted into the device interface 4 on the network security device 1, the docking component 3 and the mounting component 5 work together to increase connection stability. The stabilizing plate 12 on the network cable head 6 is inserted into the socket at one end of the docking base 204. With the help of a spring 8 and a limit bolt 9, the network cable head 6 with the docking plate 11 is fixed in the docking base 204, preventing wear at the connection point from affecting test stability due to frequent cable replacement. When it is necessary to remove the network cable head 6, simply pull the limit bolt 9 to release the connection. With the stabilizing plate 12 removed, workers can easily unplug the network cable head 6. This design utilizes a 1-to-2 straight-through interface, connecting the cable output from the packaging machine to the tooling RJ45. The 1-to-2 straight-through inlet and outlet of the tooling RJ45 are simultaneously connected to 2*4 & 2*6 test handles. Whether testing 2*4 or 2*6 products, simply plugging and unplugging the jumper in the middle of the tooling RJ45 switches between 2*4 and 2*6, eliminating the need for manual disassembly and reassembly of the 2*4 and 2*6 handles, which is unstable and saves testing time. This ensures functionality, stability, and improved testing efficiency. It provides reliable testing even with 100-meter network cables. Furthermore, by optimizing the structure and ease of operation of the extended protection plate handle fixture, installation, disassembly, and adjustment time are reduced, increasing production efficiency by an estimated 20% or more.

[0053] Second Embodiment

[0054] Please refer to the following: Figures 6-7 - Figure 8 , Figure 6 A schematic diagram of the structure of the second embodiment of the automatic aging and power-off system based on network security products provided by the present invention; Figure 7 A schematic diagram of the monitoring component is provided for this invention;

[0055] Figure 8 Provided for the present invention Figure 7 The enlarged view at point C is shown. Based on the automatic aging and power-off system for cybersecurity products provided in the first embodiment of this application, the second embodiment of this application proposes another automatic aging and power-off system for cybersecurity products. The second embodiment is merely a preferred embodiment of the first embodiment, and the implementation of the second embodiment will not affect the separate implementation of the first embodiment.

[0056] Specifically, the difference in the automatic aging power-off system based on network security products provided in the second embodiment of this application is that a fixed base 14 is installed on the top of the power-off structure 2, and a plurality of through holes 16 are opened on the top of the fixed base 14.

[0057] The perforation 16 allows the monitoring head 153 of the monitoring component 15 to pass through, and the mounting base 14 is located between the SFP cage and the docking base 204.

[0058] The top of the fixed base 14 is equipped with a monitoring component 15, which includes a mounting frame 151, a monitoring component 152 and a monitoring head 153. The mounting frame 151 is used to mount the monitoring component 152 with the monitoring head 153 on the fixed base 14.

[0059] The monitoring component 15 includes a current sensor, a voltage sensor, a temperature sensor, and a humidity sensor.

[0060] Compared with related technologies, the automatic aging and power-off system for cybersecurity products provided by this invention has the following advantages:

[0061] To enhance monitoring of the power-off structure 2 and improve test safety and accuracy, a monitoring component 15 is installed on top of the power-off structure 2 between the SFP cage 201 and the docking base 204 via a fixed base 14. The monitoring head 153 in the monitoring component 15 makes contact with the connection between the SFP cage 201 and the docking base 204. The power-off structure 2 is monitored in real time by current sensors, voltage sensors, temperature sensors, and humidity sensors in the monitoring component 152, ensuring the stability of the operation of the power-off structure 2. This design allows for timely understanding of the operating status of the power-off structure 2, ensuring the accuracy and safety of the test.

[0062] Third Embodiment

[0063] Please refer to the following: Figures 9-10 , Figure 9 A schematic diagram of the structure of the second embodiment of the automatic aging and power-off system based on network security products provided by the present invention; Figure 10 This invention provides a structural schematic diagram of a magnetic suction structure. Based on the novel grinding roller sleeve hoisting tool provided in the first embodiment of this application, the third embodiment of this application proposes another novel grinding roller sleeve hoisting tool. The third embodiment is merely a preferred embodiment of the first embodiment, and the implementation of the third embodiment will not affect the separate implementation of the first embodiment.

[0064] Specifically, the difference in the automatic aging and power-off system based on network security products provided in the second embodiment of this application is that a fixing frame 19 is installed on one side of the outer surface of the network security device 1, and a protective frame 20 is installed on one side of the fixing frame 19.

[0065] The fixed frame 19 and the network security device 1 are connected by bolts.

[0066] The other side of the protective frame 20 is fitted with a sealing cover 22 via a magnetic structure 23. One side of the sealing cover 22 has multiple cable routing ports 24.

[0067] Cable routing port 24 allows network cable 13 to pass through easily.

[0068] A heat dissipation component 18 is installed on the top of the protective frame 20, and a protective plate 17 is installed on the top of the heat dissipation component 18.

[0069] The protective plate 17 has holes to facilitate air circulation, and the heat dissipation component 18 includes a housing and a cooling fan.

[0070] A filter frame 21 is installed at the bottom of the protective frame 20. The filter frame 21 includes a frame body and an interception component.

[0071] The bottom of the filter frame 21 is also equipped with a protective plate 17, and the interception component is used to filter dust and moisture.

[0072] Compared with related technologies, the automatic aging and power-off system for cybersecurity products provided by this invention has the following advantages:

[0073] To enhance the protection of the power-off structure 2, a protective frame 20 is installed at the connection between the network security device 1 and the power-off structure 2 via a fixing frame 19. Then, a sealing cover 22 with a cable routing port 24 is connected to the protective frame 20 via a magnetic structure 23, thus covering the connection between the power-off structure 2 and the network security device 1 and providing protection. To assist in heat dissipation, a heat dissipation component 18 can be used to provide suction force, which, together with the filter structure inside the filter frame 21, filters the external air and draws it into the interior of the protective frame 20, forming air circulation and assisting in heat dissipation. This design improves the stability of the connection between the power-off structure 2 and the network security device 1.

[0074] The above description is merely an embodiment of the present invention and does not limit the patent scope of the present invention. Any equivalent structural or procedural transformations made based on the content of the present invention specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of the present invention.

Claims

1. An automatic aging and power-off system based on cybersecurity products, characterized in that, include: Cybersecurity equipment; Multiple device interfaces are located on one side of the network security device. Each set of device interfaces has a power-off structure installed on the back. The power-off structure includes an SFP cage, an SFP extension board, an SFP base, and a docking base. One end of the docking base has an opening for inserting a stabilizing plate and a docking plate. The SFP base is located above the SFP cage. Multiple network cable heads are installed on the back of the power-off structure. One end of each network cable head is fitted with a network cable, and the other end of each network cable head is fitted with a docking plate. The other end of each network cable head is fitted with a stabilizing plate with a limit hole. Two sets of mounting components are installed on the top and bottom of the power-off structure, respectively, near one end. Multiple fixing rings are installed on the top of the power-off structure near the other end. A spring is installed on the top of each fixing ring, and a limit bolt is fixedly connected to the top of each spring. Two sets of docking components are installed on one side of the network security device.

2. The automatic aging and power-off system based on cybersecurity products according to claim 1, characterized in that, The docking assembly includes a fixing bolt, a fixing plate, and a magnetic block. The fixing bolt is used to fix the fixing plate to one side of the network security device, and the magnetic block is used to attract the mounting assembly.

3. The automatic aging and power-off system based on cybersecurity products according to claim 1, characterized in that, The power failure structure operation module includes a power input module, a supercapacitor energy storage module, a programmable logic control module, an optimized relay module, and a host computer module. The power input module provides power to the supercapacitor energy storage module and network equipment. The output terminal of the supercapacitor energy storage module is connected to the input terminal of the programmable logic control module, the output terminal of the programmable logic control module is connected to the input terminal of the host computer module, and the output terminal of the programmable logic control module is connected to the input terminal of the optimized relay module.

4. The automatic aging and power-off system based on cybersecurity products according to claim 1, characterized in that, The mounting assembly includes a base plate and a docking frame, the base plate being used to secure the structure to the top and bottom of the power-off structure.

5. The automatic aging and power-off system based on cybersecurity products according to claim 4, characterized in that, The top of the power-off structure is equipped with a fixed base, and the top of the fixed base has multiple through holes.

6. The automatic aging and power-off system based on cybersecurity products according to claim 5, characterized in that, A monitoring component is mounted on the top of the fixed base. The monitoring component includes a mounting bracket, a monitoring part, and a monitoring head. The mounting bracket is used to mount the monitoring part with the monitoring head on the fixed base.

7. The automatic aging and power-off system based on cybersecurity products according to claim 1, characterized in that, A fixed frame is installed on one side of the outer surface of the cybersecurity device, and a protective frame is installed on one side of the fixed frame.

8. The automatic aging and power-off system based on cybersecurity products according to claim 7, characterized in that, The other side of the protective frame is fitted with a sealing cover via a magnetic structure, and one side of the sealing cover has multiple cable routing ports.

9. The automatic aging and power-off system based on cybersecurity products according to claim 7, characterized in that, A heat dissipation component is installed on the top of the protective frame, and a protective plate is installed on the top of the heat dissipation component.

10. The automatic aging and power-off system based on cybersecurity products according to claim 7, characterized in that, A filter frame is installed at the bottom of the protective frame, and the filter frame includes a frame body and an interception component.