Power monitoring network security configuration hardening device
By incorporating a sealing mechanism and early warning components into the power monitoring equipment, and utilizing magnetic differences and low-boiling-point solutions to drive airbags to automatically seal ventilation openings, the fire hazard caused by untimely heat dissipation from electrical components is solved. This achieves equipment safety and timely alarm functions, thereby improving the safety of the power monitoring system.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- GUANGDONG POWER GRID CO LTD
- Filing Date
- 2023-11-17
- Publication Date
- 2026-05-08
AI Technical Summary
The existing power monitoring system's network security configuration and hardening equipment cannot dissipate the heat generated by electrical components during operation in a timely manner, which can easily lead to aging and fire, posing a safety hazard.
A network security configuration and hardening device for power monitoring was designed, including a blocking mechanism and an early warning component. It utilizes the magnetic difference between an electromagnet and a magnetic block to block the ventilation opening when a fire occurs, and automatically powers on the airbag to provide early warning and block the ventilation opening by driving the airbag to expand through a low-boiling-point solution. Combined with a fan and a dehumidifier, the device's safety is ensured.
It effectively prevents the fire from spreading, issues timely alarms, improves the security of the power monitoring system, prevents the fire from spreading, and ensures the safe operation of equipment.
Smart Images

Figure CN117578719B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of power equipment, and more particularly to a network security configuration and hardening device for power monitoring. Background Technology
[0002] Power monitoring systems use computers, communication equipment, and measurement and control units as basic tools to achieve real-time data acquisition, switch status detection, and remote control of power distribution systems, thereby enabling rapid response to abnormal situations during power distribution.
[0003] Currently, power monitoring systems typically deploy network security configuration hardening equipment to ensure network security. This equipment monitors the security configurations of directly connected hosts, servers, network devices, and security devices to identify security configuration risks and provide security analysis and remediation suggestions. It also hardens existing security configuration risks and automatically blocks high-risk ports.
[0004] Existing power monitoring system network security configurations typically include a housing and electrical components housed within it. However, the electrical components inside the housing generate a significant amount of heat during operation. If this heat cannot be dissipated in a timely manner, it can easily cause aging electrical components to catch fire, posing a safety hazard. Summary of the Invention
[0005] The purpose of this invention is to provide a power monitoring network security configuration and hardening device that can prevent the fire from spreading and issue an alarm to remind people to extinguish the fire when it starts, thus ensuring high security.
[0006] To achieve the above objectives, the present invention adopts the following technical solution:
[0007] A network security configuration and hardening device for power monitoring is provided, including a housing, a first mounting cavity inside the housing, electrical components disposed within the first mounting cavity, a ventilation opening on the side wall of the housing, a blocking mechanism and an early warning component, the blocking mechanism including a baffle and a drive assembly, the baffle being adjacent to the ventilation opening, the drive assembly including a control component and an electromagnet and a magnetic block disposed opposite to each other, a first elastic element disposed between the electromagnet and the magnetic block, the first elastic element causing the magnet to tend to move closer to the electromagnet;
[0008] The baffle is connected to the side of the magnetic block away from the electromagnet. When the electromagnet is energized, it generates a magnetism opposite to that of the magnetic block, causing the magnetic block to overcome the elastic force of the first elastic element and move away from the electromagnet, thereby moving the baffle to block the vent. The control component is connected to the electromagnet and the warning component respectively. When the electrical component catches fire, the control component can control the electromagnet to be energized, and at the same time the warning component will issue an alarm.
[0009] As a preferred embodiment of a network security configuration and hardening device for power monitoring, the control component includes a sealed first housing disposed inside the outer casing. A first conductive plate and a second conductive plate are vertically spaced within the first housing. The first conductive plate is located below the second conductive plate and is movable relative to the second conductive plate. The first conductive plate is connected to the electromagnet and the warning device, respectively. The second conductive plate is connected to a power source. An inflatable airbag is disposed at the bottom of the first conductive plate. The airbag is filled with a low-boiling-point solution. When a fire occurs, the solution vaporizes upon heating, causing the airbag to expand and lift the first conductive plate to adhere to the second conductive plate, thereby automatically energizing the electromagnet and the warning device.
[0010] As a preferred solution for power monitoring network security configuration and hardening equipment, the ventilation opening includes a first air inlet and a first air outlet. The first air inlet, the first mounting cavity and the first air outlet are connected in sequence to form a heat dissipation duct. A fan is installed in the heat dissipation duct, and the fan is used to allow external air to flow into the heat dissipation duct.
[0011] As a preferred embodiment of power monitoring network security configuration and hardening equipment, the baffle is blocked at the first air inlet; and / or,
[0012] The sealing mechanism further includes louvers and fixed shafts. Multiple fixed shafts are arranged at intervals along the vertical direction inside the first air outlet, and an air outlet gap is formed between two adjacent fixed shafts. Each fixed shaft is rotatably mounted with a louver. The width of the louver is equal to the distance between two adjacent fixed shafts, and the louver can selectively block the air outlet gap.
[0013] As a preferred solution for power monitoring network security configuration and hardening equipment, a second elastic element is provided on the fixed shaft. The second elastic element is connected to the louver. The second elastic element can drive the louver to keep it sealed in the air outlet gap. When the air pressure inside the housing reaches the preset air pressure, the gas inside the housing can push open the louver to open the first air outlet.
[0014] As a preferred embodiment of a network security configuration and hardening device for power monitoring, a second mounting cavity is provided in the side wall of the housing, and the first air inlet communicates with the interior of the housing through the second mounting cavity. The second mounting cavity is provided with the fan and a dehumidifier, and the dehumidifier is used to dry the air entering the first mounting cavity.
[0015] As a preferred embodiment of a network security configuration and hardening device for power monitoring, the second mounting cavity includes a first sub-cavity and a second sub-cavity spaced apart, and a connecting cavity disposed between the first sub-cavity and the second sub-cavity. The first sub-cavity and the second sub-cavity are connected through the connecting cavity. The first sub-cavity is connected to the first air inlet, and the second sub-cavity is connected to the first mounting cavity. The fan is installed in the first sub-cavity, and the dehumidifier is installed in the second sub-cavity.
[0016] The outer casing also includes a second box body, the second box body is provided with a dehumidification chamber, the dehumidification component is provided in the dehumidification chamber, the second box body has a first part and a second part, the first part is located in the first mounting cavity, the second part is located in the second sub-cavity, the second part is provided with a second air inlet communicating with the dehumidification chamber, and the first part is provided with a second air outlet communicating with the dehumidification chamber.
[0017] As a preferred embodiment of the network security configuration and reinforcement equipment for power monitoring, the second part is also provided with a socket that communicates with the dehumidification chamber. One end of the dehumidification component passes through the socket and is inserted into the dehumidification chamber, while the other end is sealed in the socket and provided with a handle.
[0018] As a preferred embodiment of a network security configuration and hardening device for power monitoring, the side wall of the housing has an opening corresponding to the position of the socket, which communicates with the outside of the housing. A maintenance cover is provided at the opening, and the maintenance cover selectively seals the opening.
[0019] As a preferred embodiment of network security configuration and hardening equipment for power monitoring networks, the airbag is made of rubber, polyurethane, or nylon material; and / or,
[0020] The solution is at least one of ethanol, acetone, and ethyl acetate.
[0021] The beneficial effects of this invention are as follows: Under normal conditions, the magnet can move the baffle closer to the electromagnet under the action of the first elastic element, away from the vent. At this time, the vent allows external air to enter the housing to dissipate heat from the electrical components. When the power monitoring network security configuration and reinforcement equipment catches fire, the control element can control the electromagnet to be energized, causing the electromagnet to generate a magnetism opposite to that of the magnetic block and form a repulsive force. Under the action of the repulsive force, the magnet can move away from the electromagnet and move the baffle closer to the vent to block the vent, keeping the housing in a closed state and preventing external air from entering the housing to avoid the fire from spreading. At the same time, the control element can also control the warning element to issue an alarm to remind staff to eliminate hidden dangers in time, thereby improving the security of the power monitoring system network security configuration during use. Attached Figure Description
[0022] The present invention will now be described in further detail with reference to the accompanying drawings and embodiments.
[0023] Figure 1 This is a perspective view of a power monitoring network security configuration and hardening device according to an embodiment of the present invention.
[0024] Figure 2 This is a three-dimensional sectional view of a power monitoring network security configuration and hardening device according to an embodiment of the present invention.
[0025] Figure 3 for Figure 2 Enlarged view of point A.
[0026] Figure 4 for Figure 2 Enlarged view of point B.
[0027] Figure 5 This is a first cross-sectional view of the power monitoring network security configuration and hardening device located at the first air outlet, according to an embodiment of the present invention.
[0028] Figure 6 This is a second cross-sectional view of the power monitoring network security configuration and hardening device according to an embodiment of the present invention.
[0029] Figure 7 This is an assembly perspective view of the second box body and dehumidifier component according to an embodiment of the present invention.
[0030] In the picture:
[0031] 1. Outer casing; 11. First air inlet; 12. First air outlet; 13. First mounting cavity; 14. Second mounting cavity;
[0032] 2. Blocking mechanism; 21. Baffle; 22. Control component; 221. First housing; 222. First conductive sheet; 223. Second conductive sheet; 224. Airbag; 23. Electromagnet; 24. Magnetic block; 25. First elastic element; 26. Louver; 27. Fixed shaft; 28. Second elastic element;
[0033] 3. Warning component; 4. Fan; 5. Dehumidifier; 51. Handle; 6. Second box; 61. Dehumidifier chamber; 7. Dustproof net; 8. Connecting pipe. Detailed Implementation
[0034] To make the technical problems solved by the present invention, the technical solutions adopted, and the technical effects achieved clearer, the technical solutions of the embodiments of the present invention will be further described in detail below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0035] In the description of this invention, unless otherwise explicitly specified and limited, the terms "connected," "linked," and "fixed" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances.
[0036] Power monitoring systems use computers, communication equipment, and measurement and control units as basic tools to achieve real-time data acquisition, switch status detection, and remote control of power distribution systems, thereby enabling rapid response to abnormal situations during power distribution.
[0037] Currently, power monitoring systems typically deploy network security configuration hardening equipment to ensure network security. This equipment monitors the security configurations of directly connected hosts, servers, network devices, and security devices to identify security configuration risks and provide security analysis and remediation suggestions. It also hardens existing security configuration risks and automatically blocks high-risk ports.
[0038] Existing power monitoring system network security configurations typically include a housing and electrical components housed within it. However, the electrical components inside the housing generate a significant amount of heat during operation. If this heat cannot be dissipated in a timely manner, it can easily cause aging electrical components to catch fire, posing a safety hazard.
[0039] like Figures 1 to 3 As shown, the present invention provides a power monitoring network security configuration and hardening device, including a housing 1, a first mounting cavity 13 inside the housing 1, an electrical component (not shown in the figure) installed in the first mounting cavity 13, a vent on the side wall of the housing 1, a blocking mechanism 2 and a warning component 3 on the housing 1, the blocking mechanism 2 including a baffle 21 and a drive assembly, the baffle 21 being adjacent to the vent, the drive assembly including a control component 22 and an electromagnet 23 and a magnetic block 24 disposed opposite to each other, a first elastic element 25 being disposed between the electromagnet 23 and the magnetic block 24, the first elastic element 25 driving the magnet to have a tendency to move closer to the electromagnet 23, so that the baffle 21 is kept away from the vent;
[0040] The baffle 21 is connected to the side of the magnetic block 24 away from the electromagnet 23. When the electromagnet 23 is energized, it generates a magnetism opposite to that of the magnetic block 24, which drives the magnetic block 24 to overcome the elastic force of the first elastic member 25 and move away from the electromagnet 23. This causes the baffle 21 to move towards the vent to block the vent. The control member 22 is connected to the electromagnet 23 and the warning member 3 respectively. When the electrical component catches fire, the control member 22 controls the electromagnet 23 to be energized, and at the same time the warning member 3 issues an alarm.
[0041] Under normal conditions, under the action of the first elastic element 25, the magnet can drive the baffle 21 to move closer to the electromagnet 23, away from the vent. At this time, the vent allows external air to enter the housing 1 to dissipate heat from the electrical components. When the electrical components in the power monitoring network security configuration and reinforcement equipment catch fire due to aging or insufficient heat dissipation, the control element 22 can control the electromagnet 23 to be energized, causing the electromagnet 23 to generate a magnetism opposite to that of the magnetic block 24 and form a repulsive force. Under the action of the repulsive force, the magnet can move away from the electromagnet 23 and drive the baffle 21 to move closer to the vent to block the vent, keeping the housing 1 in a closed state and preventing external air from entering the housing 1. Therefore, there is not enough air in the first mounting cavity 13, which can prevent the fire from spreading further. At the same time, the control element 22 can also control the warning element 3 to issue an alarm to remind the staff to extinguish the fire in time to eliminate the hidden danger, thereby improving the security of the power monitoring system network security configuration during use.
[0042] Specifically, such as Figure 2 and Figure 4As shown, the control component 22 includes a sealed first housing 221 disposed inside the outer casing 1. A first conductive sheet 222 and a second conductive sheet 223 are vertically spaced within the first housing 221. The first conductive sheet 222 is located below the second conductive sheet 223 and is movable relative to the second conductive sheet 223. The first conductive sheet 222 is connected to the electromagnet 23 and the warning device 3, respectively. The second conductive sheet 223 is connected to a power source. An inflatable airbag 224 is disposed at the bottom of the first conductive sheet 222, and the airbag 224 is filled with a low-boiling-point solution (not shown in the figure). When the power monitoring network security configuration and reinforcement equipment catches fire, the low-boiling-point solution can be heated and vaporized to increase the air pressure inside the airbag 224, causing the airbag 224 to expand. The expanded airbag 224 can lift the first conductive sheet 222, causing the first conductive sheet 222 to move upward and adhere to the second conductive sheet 223, thereby automatically energizing the electromagnet 23 and the warning device 3 when the electrical component catches fire.
[0043] After the ambient temperature drops, the vaporized solution can re-liquefy, causing the airbag 224 to contract. Therefore, the first conductive sheet 222 can automatically move down and reset under its own gravity. This design is simple and does not require a mechanical drive structure to move the first conductive sheet 222, which helps reduce manufacturing costs and difficulty. It also helps to reduce the size of the control component 22, thereby reducing the space occupied by the control component 22 in the first mounting cavity 13. Therefore, it contributes to the miniaturization of the outer casing 1.
[0044] Optionally, the solution is at least one of ethanol (alcohol), acetone, and ethyl acetate. Ethanol has a boiling point of 78.3°C, acetone has a boiling point of 56.5°C, and ethyl acetate has a boiling point of 76.5 to 77.5°C. The boiling points of the above solutions are all lower than the ignition temperature of the electrical components. Therefore, when ignited, ethanol, acetone, and ethyl acetate can all rapidly vaporize, causing the gasbag 224 to expand rapidly, thereby achieving contact between the first conductive sheet 222 and the second conductive sheet 223.
[0045] Optionally, the airbag 224 can be made of rubber, polyurethane, or nylon. Rubber, polyurethane, and nylon all have high strength, ensuring the strength of the airbag 224 and making it less prone to damage. In addition, all three have good heat resistance, allowing them to be used at higher temperatures and preventing damage from heat.
[0046] In an optional embodiment, one of the inner sidewall of the first housing 221 and the first conductive sheet 222 is provided with a vertically extending groove (not shown in the figure), and the other of the inner sidewall of the first housing 221 and the first conductive sheet 222 is provided with a sliding part (not shown in the figure) that cooperates with the groove. For example, the inner sidewall of the first housing 221 is provided with a groove, and the first conductive sheet 222 has a sliding part that cooperates with the groove. The sliding part is slidably disposed in the groove to limit the movement direction of the first conductive sheet 222, ensuring that the first conductive sheet 222 always moves in a vertical direction, and preventing the first conductive sheet 222 from shifting due to uneven expansion and deformation of the airbag 224.
[0047] In another optional embodiment, an insulating guide rod (not shown in the figure) extending vertically is provided inside the first housing 221. The second conductive sheet 223 is fixed on the guide rod, and the first conductive sheet 222 is slidably disposed on the guide rod to limit the movement direction of the first conductive sheet 222, ensuring that the first conductive sheet 222 always moves in the vertical direction, and preventing the first conductive sheet 222 from shifting due to uneven expansion and deformation of the airbag 224.
[0048] Specifically, such as Figure 2 As shown, the ventilation opening includes a first air inlet 11 and a first air outlet 12. The first air inlet 11, the first mounting cavity 13, and the first air outlet 12 are sequentially connected to form a heat dissipation duct. A fan 4 is installed inside the heat dissipation duct to allow external air to flow into it. The external air can circulate within the heat dissipation duct and the exterior of the housing 1 to dissipate heat from the electrical components inside the first mounting cavity 13, further improving the heat dissipation effect of the electrical components.
[0049] Optionally, the baffle 21 is used to block the first air inlet 11 and / or the first air outlet 12.
[0050] In this embodiment, as Figure 2 and Figure 3 As shown, the baffle 21 is used to block the first air inlet 11. Figure 2 and Figure 5As shown, the sealing mechanism 2 also includes louvers 26 and fixed shafts 27. Multiple fixed shafts 27 are arranged vertically at intervals inside the first air outlet 12, and an air outlet gap is formed between two adjacent fixed shafts 27. A louver 26 is rotatably arranged on each fixed shaft 27. The width of the louver 26 is equal to the distance between two adjacent fixed shafts 27. The louver 26 can selectively block the air outlet gap. Understandably, one end of the louver 26 is rotatably connected to the fixed shaft 27. Without external force, the louver 26 can rotate relative to the fixed shaft 27 using its own weight, so that the other end of the louver 26 abuts against the adjacent fixed shaft 27 and keeps the air outlet gap between the two adjacent fixed shafts 27 sealed. When external air flows into the first mounting cavity 13, the air pressure in the first mounting cavity 13 will gradually increase. Under the action of air pressure, the louver 26 can rotate relative to the fixed shaft 27 to open the air outlet gap between the two adjacent fixed shafts 27, so that air can be discharged from the air outlet, thereby ensuring normal air circulation and avoiding affecting the heat dissipation effect of electrical components.
[0051] Since the louvered plate 26 relies solely on its own weight to maintain the seal within the air outlet gap, it is prone to swaying due to external forces. This could lead to the air outlet gap opening due to misoperation when it needs to be sealed. Preferably, refer to... Figure 2 , Figure 5 and Figure 6 A second elastic element 28 is provided on the fixed shaft 27. The second elastic element 28 is connected to the louver 26. For example, the second elastic element 28 is a torsion spring. The second elastic element 28 can drive the louver 26 to remain sealed in the air outlet gap. When the air pressure inside the housing 1 reaches the preset air pressure, the gas inside the housing 1 can overcome the elastic force of the second elastic element 28 and push the louver 26 open to open the first air outlet 12. This design can use the elastic force of the second elastic element 28 to keep the louver 26 sealed in the air outlet gap, making the louver 26 less prone to shaking due to external forces. Moreover, it can open when the air pressure inside the first mounting cavity 13 reaches the preset air pressure to avoid affecting the airflow.
[0052] Preferably, please continue to refer to Figure 1 and Figure 2 A dustproof net 7 is installed at the air inlet. The dustproof net 7 can block dust and other foreign objects from entering the first mounting cavity 13 along with the air, so as to protect the electrical components in the first mounting cavity 13.
[0053] In some alternative embodiments, such as Figure 2 As shown, a second mounting cavity 14 is provided inside the side wall of the outer casing 1. The first air inlet 11 communicates with the interior of the outer casing 1 through the second mounting cavity 14. The second mounting cavity 14 is provided with a fan 4 and a dehumidifier 5. The dehumidifier 5 can dry the air entering the first mounting cavity 13 to prevent the humid air from contacting the electrical components and causing damage to the electrical components.
[0054] Specifically, such as Figure 2 and Figure 7 As shown, the outer casing 1 also includes a second housing 6, within which a dehumidification chamber 61 is provided. A dehumidification component 5 is installed within the dehumidification chamber 61. The second housing 6 has a first part and a second part. The first part is located within a first mounting cavity 13, and the second part is located within a second mounting cavity 14. The second part has a second air inlet communicating with the dehumidification chamber 61, and the first part has a second air outlet. The second air inlet communicates with the dehumidification chamber 61. Air entering the second mounting cavity 14 enters the second housing 6 through the second air inlet, is dehumidified by the dehumidification component 5, and then flows back into the first mounting cavity 13 through the second air outlet.
[0055] In an alternative embodiment, refer to Figure 2 The second mounting cavity 14 includes a first sub-cavity and a second sub-cavity spaced apart. A connecting cavity is provided between the first sub-cavity and the second sub-cavity, and the first sub-cavity and the second sub-cavity are connected through the connecting cavity. The first sub-cavity is connected to the first air inlet 11, and the second sub-cavity is connected to the first mounting cavity 13. The fan 4 is installed in the first sub-cavity, and the dehumidifier 5 is installed in the second sub-cavity.
[0056] For example, please continue to refer to Figure 2 The first sub-cavity is located on one side wall of the outer casing 1, and the second sub-cavity is located on the other side wall of the outer casing 1. The fan 4 includes a motor and blades connected to the motor. The blades are located in the first sub-cavity, and the motor part is located in the first sub-cavity and connected to the blades to drive the blades to rotate. The motor part is located outside the outer casing 1 to reduce the space of the first sub-cavity, so that the wall thickness of the outer casing 1 can be reduced as much as possible, thereby reducing the overall volume and weight of the power monitoring network security configuration and hardening equipment.
[0057] The second part of the second box 6 is located in the second sub-cavity. The second air inlet is connected to the first sub-cavity through a connecting pipe 8. One end of the connecting pipe 8 is connected to the second air inlet, and the other end passes through the connecting cavity and is connected to the first sub-cavity. The connecting pipe 8 can quickly guide air into the dehumidification cavity 61 of the second box 6 to accelerate the air flow and dissipate heat.
[0058] Of course, in other embodiments, the first sub-cavity, the connecting cavity, and the second sub-cavity may also be disposed on the same sidewall of the housing 1. Adaptably, the sidewall thickness of the housing 1 is designed to be sufficiently thick to meet the requirement of simultaneously opening the first sub-cavity, the connecting cavity, and the second sub-cavity.
[0059] For preferred options, please refer to [the provided text]. Figure 7The second part also has an insertion hole that communicates with the dehumidification chamber 61. One end of the dehumidification component 5 passes through the insertion hole and is inserted into the dehumidification chamber 61, while the other end is sealed in the insertion hole and equipped with a handle 51. This design facilitates the replacement of the dehumidification component 5 by connecting the dehumidification component 5 to the insertion hole and by using the handle 51 to easily pull out the dehumidification component 5, thereby improving the replacement efficiency of the dehumidification component 5.
[0060] For example, the dehumidifier 5 may be a plate-like structure made of activated carbon or calcium chloride, so as to be easily inserted into the dehumidifier cavity 61.
[0061] In a preferred embodiment, an opening (not shown in the figure) is provided on the side wall of the outer casing 1 at the position corresponding to the insertion hole. The opening connects the second sub-cavity and the outside of the outer casing 1. A maintenance cover (not shown in the figure) is provided at the opening, and the maintenance cover selectively seals the opening. With this design, the maintenance cover can be opened to expose the insertion hole, thereby removing the dehumidifier 5 from the second sub-cavity and quickly replacing it with a new dehumidifier 5.
[0062] It should be noted that the maintenance cover can adopt the existing technology of cover plate and box body closing structure. For example, the existing hinge structure can be used to make the maintenance cover flipped and set on the box body, and the existing locking structure can be used to make the maintenance cover locked after it is closed on the box body. The specific structure will not be described in detail here.
[0063] Preferably, the maintenance cover is made of a transparent plate, which allows for easy observation of the dehumidifier 5's operating status and timely replacement of the dehumidifier 5. The transparent plate can be made of acrylic or glass.
[0064] Optional, refer to Figure 1 The bottom of the housing 1 is provided with multiple pillars to separate the bottom of the housing 1 from the support platform, so that air can flow through the bottom of the housing 1 and carry away some of the heat generated by the electronic components, thereby improving the heat dissipation effect of the electronic components.
[0065] Furthermore, an anti-slip pad is provided at the bottom of the support column to prevent the power monitoring network security configuration and reinforcement equipment from slipping and falling due to accidental operation. For example, the anti-slip pad can be a rubber pad.
[0066] Optionally, the warning device 3 includes an alarm. The alarm is capable of issuing forecast, warning, and all-clear signals.
[0067] In the description herein, it should be understood that the terms "upper," "lower," "left," "right," etc., refer to the orientation or positional relationship shown in the accompanying drawings, and are used only for ease of description and simplification of operation, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the present invention. Furthermore, the terms "first" and "second" are used merely for descriptive distinction and have no special meaning.
[0068] In the description of this specification, references to terms such as "an embodiment," "example," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, illustrative expressions of the above terms do not necessarily refer to the same embodiment or example.
[0069] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style of the specification is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
[0070] The technical principles of the present invention have been described above with reference to specific embodiments. These descriptions are merely for explaining the principles of the invention and should not be construed as limiting the scope of protection of the invention in any way. Based on this explanation, those skilled in the art can readily conceive of other specific embodiments of the invention without inventive effort, and these embodiments will all fall within the scope of protection of the present invention.
Claims
1. A network security configuration and hardening device for power monitoring, characterized in that, The device includes a housing, an interior of which a first mounting cavity is provided, an electrical component is provided within the first mounting cavity, a vent is provided on the side wall of the housing, a sealing mechanism and a warning component are provided in the housing, the sealing mechanism includes a baffle and a drive assembly, the baffle is adjacent to the vent, the drive assembly includes a control component and an electromagnet and a magnetic block disposed opposite to each other, a first elastic element is provided between the electromagnet and the magnetic block, the first elastic element causes the magnet to tend to move closer to the electromagnet; The baffle is connected to the side of the magnetic block away from the electromagnet. When the electromagnet is energized, it generates a magnetism opposite to that of the magnetic block, thereby driving the magnetic block to overcome the elastic force of the first elastic element and move away from the electromagnet, and causing the baffle to move to block the vent. The control component is connected to the electromagnet and the warning component respectively. When the electrical component catches fire, the control component can control the electromagnet to be energized, and at the same time the warning component will issue an alarm. The control unit includes a sealed first housing disposed inside the outer casing. A first conductive sheet and a second conductive sheet are arranged vertically at intervals inside the first housing. The first conductive sheet is located below the second conductive sheet and is movable relative to the second conductive sheet. The first conductive sheet is connected to the electromagnet and the warning device respectively. The second conductive sheet is connected to a power source. An inflatable airbag is disposed at the bottom of the first conductive sheet. The airbag is filled with a low-boiling-point solution. When a fire occurs, the solution is heated and vaporized, which can cause the airbag to expand and lift the first conductive sheet to fit against the second conductive sheet, so as to automatically energize the electromagnet and the warning device.
2. The power monitoring network security configuration and hardening device according to claim 1, characterized in that, The ventilation opening includes a first air inlet and a first air outlet. The first air inlet, the first mounting cavity, and the first air outlet are connected in sequence to form a heat dissipation duct. A fan is installed in the heat dissipation duct to allow external air to flow into the heat dissipation duct.
3. The power monitoring network security configuration and hardening device according to claim 2, characterized in that, The baffle is used to block the first air inlet; and / or The sealing mechanism further includes louvers and fixed shafts. Multiple fixed shafts are arranged at intervals along the vertical direction inside the first air outlet, and an air outlet gap is formed between two adjacent fixed shafts. Each fixed shaft is rotatably mounted with a louver. The width of the louver is equal to the distance between two adjacent fixed shafts, and the louver can selectively block the air outlet gap.
4. The power monitoring network security configuration and hardening device according to claim 3, characterized in that, A second elastic element is provided on the fixed shaft. The second elastic element is connected to the louver. The second elastic element can drive the louver to remain sealed in the air outlet gap. When the air pressure inside the housing reaches the preset air pressure, the gas inside the housing can push open the louver to open the first air outlet.
5. The power monitoring network security configuration and hardening device according to any one of claims 2-4, characterized in that, A second mounting cavity is provided inside the side wall of the outer casing. The first air inlet communicates with the interior of the outer casing through the second mounting cavity. The second mounting cavity is provided with the fan and a dehumidifier. The dehumidifier is used to dry the air entering the first mounting cavity.
6. The power monitoring network security configuration and hardening device according to claim 5, characterized in that, The second mounting cavity includes a first sub-cavity and a second sub-cavity spaced apart, and a connecting cavity disposed between the first sub-cavity and the second sub-cavity. The first sub-cavity and the second sub-cavity are connected through the connecting cavity. The first sub-cavity is connected to the first air inlet, and the second sub-cavity is connected to the first mounting cavity. The fan is installed in the first sub-cavity, and the dehumidifier is installed in the second sub-cavity. The outer casing also includes a second box body, the second box body is provided with a dehumidification chamber, the dehumidification component is provided in the dehumidification chamber, the second box body has a first part and a second part, the first part is located in the first mounting cavity, the second part is located in the second sub-cavity, the second part is provided with a second air inlet communicating with the dehumidification chamber, and the first part is provided with a second air outlet communicating with the dehumidification chamber.
7. The power monitoring network security configuration and hardening device according to claim 6, characterized in that, The second part is also provided with an insertion hole that communicates with the dehumidification chamber. One end of the dehumidification component passes through the insertion hole and is inserted into the dehumidification chamber, while the other end is sealed in the insertion hole and is provided with a handle.
8. The power monitoring network security configuration and hardening device according to claim 7, characterized in that, The side wall of the outer casing has an opening corresponding to the position of the socket, which communicates with the outside of the outer casing. A maintenance cover is provided at the opening, and the maintenance cover selectively seals the opening.
9. The power monitoring network security configuration and hardening device according to claim 1, characterized in that, The airbag is made of rubber, polyurethane, or nylon; and / or, The solution is at least one of ethanol, acetone, and ethyl acetate.
Citation Information
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