A power monitoring system network security operation and maintenance protection device and method thereof
By designing an automated network security operation and maintenance protection device for power monitoring systems, and adopting automatic sealing doors, conveyor belts, and cooling mechanisms, the heat dissipation and dust prevention problems of existing devices have been solved, achieving efficient automatic disassembly and assembly and enhanced security, thus meeting the maintenance needs of power monitoring systems.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- XINJIANG ENERGY (GRP) HAMI CLEAN ENERGY CO LTD
- Filing Date
- 2023-10-23
- Publication Date
- 2026-05-01
AI Technical Summary
The existing network security operation and maintenance devices for power monitoring systems have poor heat dissipation and dust prevention effects, and are inconvenient for users to maintain. In particular, manual disassembly and assembly are required during equipment maintenance, which increases dust pollution and reduces heat dissipation. Furthermore, they are not intelligent enough.
A network security operation and maintenance protection device for power monitoring systems was designed, comprising a main unit, a positioning and clamping mechanism, a low-oxygen mechanism, and a cooling mechanism. It adopts an automatic sealing door, a conveyor belt, an electric push rod, and a cooling mechanism to achieve automatic disassembly and assembly of the main server. Combined with low-oxygen and air-cooling/liquid-cooling technologies, it ensures cleanliness and efficient heat dissipation inside the device.
It achieves excellent heat dissipation and dust prevention capabilities, reduces user maintenance workload, ensures the cleanliness and safety of the device's interior, and improves the ease of use and safety of the equipment.
Smart Images

Figure CN117395930B_ABST
Abstract
Description
A network security operation and maintenance protection device and method for power monitoring systems Technical Field
[0001] This invention relates to the field of network security operation and maintenance protection technology, specifically to a network security operation and maintenance protection device and method for a power monitoring system. Background Technology
[0002] Power monitoring systems use computers, communication equipment, and measurement and control units as basic tools to provide a basic platform for real-time data acquisition, switch status detection, and remote control of power distribution systems. They can form arbitrarily complex monitoring systems with detection and control equipment, playing a core role in power distribution monitoring. They can help enterprises eliminate data silos, reduce operating costs, improve production efficiency, and accelerate the response speed to anomalies in the power distribution process. In the operation and maintenance of the entire power network, multiple servers need to work simultaneously to meet the huge computing load.
[0003] Existing network security operation and maintenance devices have poor heat dissipation and dust prevention effects during use, and are inconvenient for users to maintain. In particular, when maintaining and repairing the equipment, manual disassembly and transportation are required, which further increases the dust in the overall equipment space, thereby further reducing the heat dissipation effect of the equipment. In addition, the overall system is not intelligent enough and is not convenient for users to use. Summary of the Invention
[0004] The purpose of this invention is to provide a network security operation and maintenance protection device and method for power monitoring systems, to solve the problems mentioned in the background art, such as poor heat dissipation and dust prevention effects of existing network security operation and maintenance devices, and inconvenience for user maintenance work. In particular, when maintaining and repairing the equipment, manual disassembly and transportation are required, which further increases the dust in the overall equipment space, thereby further reducing the heat dissipation effect of the equipment. In addition, the overall system is not intelligent enough and is inconvenient for users to use. This solution has good heat dissipation and dust prevention effects in use. At the same time, the device is highly intelligent and does not require users to enter the device to disassemble and reassemble the main server, which can greatly reduce the user's workload, facilitate the user's maintenance work, and ensure the cleanliness of the device's interior, making it a dust-free environment. This improves the heat dissipation effect and security of the device, making it very convenient for users to use.
[0005] To achieve the above objectives, the present invention provides the following technical solution: a network security operation and maintenance protection device and method for a power monitoring system. The device includes a main housing, a positioning and clamping mechanism, a low-oxygen mechanism, a cooling mechanism, and a cooling system. One end of the main housing is equipped with an automatic sealing door, and another end is equipped with a control panel. Side sealing plates are connected to both sides of the main housing via rotating shafts. The upper middle parts of both ends of the side sealing plates are connected to first electric push rods via rotating shafts, and one end of each first electric push rod is connected to the inner wall of the main housing via a rotating shaft. The inner wall at the bottom of the main housing is fixedly connected to... The mounting base has a conveyor belt at one end, and mounting grooves are evenly distributed at the top of the conveyor belt. The inner wall of the bottom of each mounting groove has a connecting groove. A main server is installed inside each mounting groove. Positioning grooves are provided at both ends of each mounting groove. Positioning rods are fixedly connected to the inner wall of the bottom of each positioning groove. Positioning cylinders are provided at both ends of each main server, and the upper middle part of each positioning cylinder is slidably connected to the positioning rod. The lower middle part of each positioning cylinder is flared. Locking devices are evenly distributed at the top of the mounting base, and each locking device is located on one side of the main server.
[0006] Preferably, the control terminal of the control panel is electrically connected to an external power source via an external power supply, and the control terminals of the automatic sealing door, the first electric push rod, the conveyor belt, and the locking device are all electrically connected to the control panel, which facilitates user operation.
[0007] Preferably, the positioning and clamping mechanism includes coordinate rods, a driving gear, a driven gear, a motor, a toothed belt, a movable plate, a slide groove, a second electric push rod, a sliding plate, a fixed plate, a first adjusting plate, a second adjusting plate, a chuck, a first electric sliding component, a first sliding rod, a second electric sliding component, a second sliding rod, a clamping plate, a rubber pad, and a third electric push rod. The top of the main housing is provided with four sets of coordinate rods, which are paired and fixedly connected to the inner walls around the main housing. One end of each coordinate rod is connected to a driving gear via a bearing, and the other end of each coordinate rod is connected to a driven gear via a bearing. Each of the coordinate rods has a motor at one end, and the output end of each motor is fixedly connected to one end of the driving gear. Each coordinate rod has a toothed belt inside, and the inner wall of the toothed belt meshes with both the driving and driven gears. The top of the main housing has two sets of mutually perpendicular movable plates, and both ends of each movable plate are fixedly connected to the middle of the toothed belt. The inner walls of each movable plate have symmetrically formed grooves. A second electric actuator is located at the mutually perpendicular middle of each movable plate. A sliding plate is slidably connected inside each groove, and the middle of each sliding plate is connected to the second electric actuator. The rod is fixedly connected, and the output end of the second electric actuator is fixedly connected to a fixed plate. A first adjusting plate is provided at the bottom end of the fixed plate, and a second adjusting plate is provided at the bottom end of the first adjusting plate. A clamp is fixedly connected to the bottom end of the second adjusting plate. First electric sliding members are symmetrically slidably connected to the top ends of the first adjusting plates, and the top ends of each first electric sliding member are fixedly connected to the bottom end of the fixed plate. A first sliding rod is provided in the middle of each first electric sliding member, and both ends of the first sliding rod are fixedly connected to the first adjusting plate. A second electric... The device includes a sliding component, with the top of each of the second electric sliding components fixedly connected to the bottom of the first adjusting plate. A second sliding rod is provided in the middle of each of the second electric sliding components, and both ends of the second sliding rod are fixedly connected to the second adjusting plate. Clamping plates are connected to both sides of the clamping head via rotating shafts. Rubber pads are provided on the inner walls of the clamping plates, and the inner walls of the rubber pads are in contact with both sides of the main server. Third electric push rods are evenly connected to both sides of the clamping head via rotating shafts, and the output ends of the third electric push rods are connected to the top of the clamping plates via rotating shafts, facilitating automatic assembly and disassembly of the main server by this device.
[0008] Preferably, the low-oxygen mechanism includes a corner component, a gas storage tank, an automatic pipe retraction box, a first gas pipe, and nozzles. Both ends of the second electric actuator are fixedly connected to the corner component. A gas storage tank is provided at one end of the main box, and an automatic pipe retraction box is provided at the top of the gas storage tank. Nozzles are provided at the bottom ends of both sides of the clamp, and the nozzles are all located between the clamps. The top of each nozzle is connected to a first gas pipe, and the first gas pipe passes through the corner component and is connected to the gas storage tank. This can create a low-oxygen environment, prevent fires, and improve safety during use.
[0009] Preferably, the control terminals of the motor, the second electric push rod, the first electric slide, the second electric slide, the third electric push rod, and the automatic pipe take-up box are all electrically connected to the control panel to facilitate the operation of the device.
[0010] Preferably, the cooling mechanism includes a cooling box, a heat conduction box, airflow holes, air ducts, a fan, an air storage chamber, temperature measuring plates, an air pipe, a blower, a distribution pipe, a drying box, a main air pipe, and air blowing holes. The cooling box is located at the top of the main box, and air ducts are evenly distributed at the top of the main box. Temperature measuring plates are evenly distributed on the inner wall of the top of the main box, with their directions perpendicular to the air ducts. The temperature measuring plates are all located directly above the main server. A heat conduction box is fixedly connected to the middle of the cooling box. An air storage chamber is located between the top of the heat conduction box and the inner wall of the top of the cooling box. Airflow holes are evenly distributed through the top of the heat conduction box. Fans are evenly distributed at the top of the main box, with both ends of the fans fixedly connected to the inner wall of the cooling box. Air pipes are evenly arranged on both sides of the main enclosure, and the tops of the air pipes extend through the heat conduction box into the interior of the air storage chamber. A fan is installed in the middle of each air pipe. A distribution air pipe is installed at the bottom of both sides of the main enclosure, and the top of each distribution air pipe is connected to an air pipe. The side of each distribution air pipe that is close to each other is connected to a main air pipe, which is located on both sides of the main server. Air blowing holes are evenly opened at the top of each main air pipe, and the opening direction of each air blowing hole is pointing towards the main server. The inclination angle between the air blowing holes gradually increases from bottom to top. The top of the main air pipe is triangular. Drying boxes are evenly arranged inside each distribution air pipe, and the drying boxes are located on both sides of the air pipe to facilitate heat dissipation of the main server and improve the heat dissipation effect.
[0011] Preferably, the cooling mechanism includes a water collection tank, circulating water pipes, a water pump, and cooling rods. Water collection tanks are provided at both ends of the cooling tank. Three sets of circulating water pipes are evenly arranged at the top of the cooling tank, and both ends of the circulating water pipes are connected to the water collection tanks. A water pump is provided in the middle of each circulating water pipe. Cooling rods are evenly arranged inside the heat conduction tank. One side of each water collection tank is connected to both ends of the heat conduction tank through a connecting pipe, which facilitates cooling of the circulating air and further improves the heat dissipation effect.
[0012] Preferably, the control terminals of the water pump, cooling rod, fan, temperature measuring plate, and blower are all electrically connected to the control panel to facilitate the operation of the device.
[0013] The operating method of this device is as follows:
[0014] Step 1: Primary cooling. This device is sealed to prevent external dust from entering and affecting the cooling effect. The fan and blower work, and the air inside the main chassis enters the air storage chamber through the air duct and airflow holes. The air inside the air storage chamber enters the main air pipe through the air pipe and air distribution pipe, and finally is sprayed onto the surface of the main server through the air blowing holes. This allows the main server to receive airflow all over, improves the cooling effect, and performs primary cooling treatment on the main server.
[0015] Step 2: In a low-oxygen environment, the carbon dioxide gas inside the gas storage tank will be discharged into the interior of this device through the automatic pipe take-up box, gas storage tank and nozzle. The carbon dioxide will circulate internally along with the air, thereby increasing the concentration of carbon dioxide inside the main box and reducing the possibility of fire in this device.
[0016] Step 3: Further heat dissipation. When the primary air cooling cannot meet the cooling requirements, the water pump and cooling rod start working. The working cooling rod generates low temperature, which cools the surrounding coolant. The water pump can circulate the coolant inside the heat transfer box through the circulating water pipe and the water collection tank. When air passes through the airflow hole, the air temperature is reduced, thereby improving the cooling effect.
[0017] Step 4: Maintenance and Repair. When a user needs to perform maintenance and repair on a specific main server, they simply input the coordinates of the main server requiring maintenance and repair into the control panel. This device can automatically control the automatic sealing door, conveyor belt, motor, and second electric push rod to automatically complete the disassembly and assembly of the main server. Both sets of motors drive the drive gear and toothed belt to rotate, thereby controlling the intersection position of the two sets of movable plates, i.e., controlling the position of the second electric push rod. Then, the output end of the second electric push rod drives the fixed plate, the first adjusting plate, the second adjusting plate, the clamp, and the clamping plate to move downwards. When the clamping plate is on both sides of the main server, the third electric push rod extends, causing the clamping plate to rotate and clamp the main server. At this time, the locking device unlocks, and the second electric push rod lifts the main server upwards and moves it to the top of the conveyor belt. At this time, the automatic sealing door opens, the conveyor belt operates, and the main server requiring maintenance and repair is moved to one side of the main box. The user can then remove the main server for maintenance, repair, or replacement.
[0018] Step 5: When the user needs to install the main server, simply place the main server on the conveyor belt. The conveyor belt will move the main server to the bottom of the clamp, and then clamp and reset the main server. During the downward movement, the main server is precisely positioned by the positioning rod and positioning cylinder. The flared positioning cylinder facilitates the insertion of the positioning rod. Then, the fixed plate, the first adjusting plate, the second adjusting plate, the first electric slider, the first slide rod, the second electric slider and the second slide rod are automatically adjusted to ensure the normal operation of the main server. Then, the second electric push rod is reset, and at the same time, the first electric slider and the second electric slider are automatically centered and reset.
[0019] Step Six: Fire Extinguishing and Maintenance. When a fire breaks out inside the device, the temperature measuring plate on top of the main server can detect a significant temperature change. The control panel will then control the clamps and nozzles to quickly move towards the fire source. A large amount of carbon dioxide will be sprayed through the first gas pipe and nozzles to extinguish the fire and isolate oxygen. At the same time, the control panel will remotely alert the user, further improving the safety of the device. The user can open the side sealing plates on both sides using the first electric push rod, which will facilitate comprehensive maintenance and repair work.
[0020] Compared with the prior art, the beneficial effects of the present invention are:
[0021] When the user is using this device, it is in a sealed state, which prevents external dust from entering and affecting the heat dissipation effect. This also reduces the user's workload, eliminating the need for cleaning. The fan and blower operate, and air from inside the main enclosure enters the air storage chamber through air ducts and airflow holes. Because the heat transfer box contains coolant, it can lower the air temperature to a certain extent. Air from inside the air storage chamber enters the air duct, and the fan supplements the airflow, accelerating the airflow through the air duct and distribution pipes into the main air duct. Finally, air is sprayed onto the surface of the main server through air outlets at different angles, ensuring the main server receives airflow evenly and improving the cooling effect, thus providing initial cooling for the main server. Meanwhile, the air storage box... The internal carbon dioxide gas is discharged into the device through an automatic retraction box, gas storage tank, and nozzles. The carbon dioxide circulates internally along with the air, increasing the concentration of carbon dioxide inside the main chamber, thereby reducing the possibility of fire and improving the safety of the device. Since the air in the middle of the device rises from bottom to top, the temperature of the air inside the device can be detected by a temperature measuring plate, thus determining the heat generated by the main server. When primary air cooling is insufficient to meet the cooling requirements, the water pump and cooling rods operate. The operating cooling rods generate low temperatures, cooling the surrounding coolant. The water pump circulates the coolant inside the heat transfer chamber through the circulating water pipes and collection tank, ensuring uniform cooling of the coolant. When the air... When air passes through the airflow holes, it conducts heat with the upper and lower surfaces of the heat transfer box, thereby reducing the air temperature and improving the cooling effect. When the air enters the distribution pipe through the air pipe, it is dried by the drying box, ensuring the air's dryness. When a user needs to maintain or repair a specific main server, they only need to input the coordinates of the main server to be maintained or repaired into the control panel. This device can automatically control the automatic sealing door, conveyor belt, motor, and second electric actuator to automatically complete the disassembly and assembly of the main server. Both sets of motors drive the drive gear and toothed belt to rotate, thereby controlling the intersection position of the two sets of movable plates, i.e., controlling the position of the second electric actuator. Simultaneously, the slide plate slides inside the slide groove, facilitating the adjustment of the second electric actuator's position. Then, the... The output ends of the two electric actuators drive the fixed plate, first adjusting plate, second adjusting plate, clamp, and clamping plate downwards. When the clamping plate is on both sides of the main server, the third electric actuator extends, causing the clamping plate to rotate and clamp the main server. The rubber pads on the inner wall of the clamping plate increase the friction between the clamping plate and the main server, facilitating clamping. At this point, the locking device unlocks, and the second electric actuator lifts the main server upwards, so that the bottom of the main server is no longer inside the mounting slot. The motor, toothed belt, and slide rail then move the main server to the top of the conveyor belt. At this point, the automatic sealing door opens, and the conveyor belt operates, moving the main server requiring maintenance to one side of the main housing. The user can then remove the main server for maintenance, repair, or replacement.It is very convenient for users to work. When the user needs to install the main server, he / she only needs to place the main server on the conveyor belt. The conveyor belt will move the main server to the bottom of the clamp, and then clamp the main server and reset it. During the downward movement of the main server, the positioning rod and positioning cylinder are used for precise positioning. The flared positioning cylinder facilitates the insertion of the positioning rod. Then, the fixed plate, the first adjusting plate, the second adjusting plate, the first electric slider, the first slide rod, the second electric slider and the second slide rod are automatically adjusted to facilitate the adjustment of the position of the clamp and the main server. Finally, the upper middle part of the positioning cylinder is used for precise positioning, which facilitates the installation of the main server. Finally, the locking device locks the main server, so that the bottom of the main server is connected to the connecting groove, thus ensuring the normal operation of the main server. Then the second electric push rod resets, and the first electric slider and the second electric slider automatically center and reset. In the event of an internal fire, the temperature sensor plate on top of the main server detects a significant temperature change. This triggers the control panel, which then moves the clamps and nozzles rapidly towards the fire source. A large amount of carbon dioxide is then sprayed through the first gas pipe and nozzles to extinguish the fire and isolate oxygen. Simultaneously, the control panel remotely alerts the user, further enhancing the device's safety. For comprehensive maintenance and repairs, the user can open the side sealing plates using the first electric actuator, facilitating all necessary procedures. The device offers excellent heat dissipation and dust prevention. Its high level of automation eliminates the need for user access to disassemble the main server, significantly reducing workload and simplifying maintenance. It also maintains a clean, dust-free environment, further enhancing heat dissipation and safety, making it highly user-friendly. Attached Figure Description
[0022] Figure 1 is a perspective view of the present invention;
[0023] Figure 2 is a cross-sectional perspective view of the present invention;
[0024] Figure 3 is a three-dimensional schematic diagram of the side sealing plate and the first electric push rod in this invention;
[0025] Figure 4 is a three-dimensional cross-sectional view of the coordinate rod and the movable plate in this invention;
[0026] Figure 5 is a cross-sectional perspective view of the mounting base and clamping plate in this invention;
[0027] Figure 6 is a three-dimensional cross-sectional view of the first adjusting plate and the second adjusting plate in this invention;
[0028] Figure 7 is a three-dimensional cross-sectional view of the cooling box, water collection box, air distribution pipe and heat conduction box in this invention;
[0029] Figure 8 is a three-dimensional cross-sectional view of the gas storage chamber and the heat conduction box in this invention.
[0030] In the diagram: 1. Main box; 2. Automatic sealing door; 3. Control panel; 4. Side sealing plate; 5. First electric push rod; 6. Mounting base; 7. Conveyor belt; 8. Mounting groove; 9. Connecting groove; 10. Main server; 11. Positioning groove; 12. Positioning rod; 13. Positioning cylinder; 14. Locking device; 15. Coordinate rod; 16. Drive gear; 17. Driven gear; 18. Motor; 19. Toothed belt; 20. Movable plate; 21. Slide groove; 22. Second electric push rod; 23. Slide plate; 24. Fixed plate; 25. First adjusting plate; 26. Second adjusting plate; 27. Clamp; 28. First electric sliding component; 29. First sliding rod; 30. Second electric sliding component; 31. Second sliding rod; 32. Clamping plate; 33. Rubber pad; 34. Third electric push rod; 35. Corner component; 36. Air storage box; 37. Automatic pipe take-up box; 38. First air pipe; 39. Nozzle; 40. Cooling box; 41. Water collection box; 42. Circulating water pipe; 43. Water pump; 44. Heat transfer box; 45. Air flow hole; 46. Cooling rod; 47. Air duct; 48. Fan; 49. Air storage chamber; 50. Temperature measuring plate; 51. Air pipe; 52. Fan; 53. Air distribution pipe; 54. Drying box; 55. Main air pipe; 56. Air blowing hole. Detailed Implementation
[0031] The technical solutions of the embodiments of the present invention will be clearly and completely described 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.
[0032] Please refer to Figures 1-8 for one embodiment of the present invention:
[0033] A network security operation and maintenance protection device and method for a power monitoring system are disclosed. The device includes a main housing 1, a positioning and clamping mechanism, a low-oxygen mechanism, a cooling mechanism, and a cooling system. An automatic sealing door 2 is installed at one end of the main housing 1, and a control panel 3 is installed at the other end. Side sealing plates 4 are connected to both sides of the main housing 1 via rotating shafts. First electric push rods 5 are connected to the upper middle parts of both ends of the side sealing plates 4 via rotating shafts, and one end of each first electric push rod 5 is connected to the inner wall of the main housing 1 via a rotating shaft. A mounting base 6 is fixedly connected to the inner wall at the bottom of the main housing 1, and a conveyor is provided at one end of the mounting base 6. The top of the conveyor belt 7 is evenly provided with mounting grooves 8, the inner wall of the bottom of the mounting groove 8 is provided with connecting grooves 9, the inside of the mounting groove 8 is provided with a main server 10, the two ends of the mounting groove 8 are provided with positioning grooves 11, the inner wall of the bottom of the positioning groove 11 is fixedly connected with positioning rods 12, the two ends of the main server 10 are provided with positioning cylinders 13, the upper middle part of the positioning cylinders 13 is slidably connected with the positioning rods 12, the lower middle part of the positioning cylinders 13 is horn-shaped, the top of the mounting base 6 is evenly provided with locking devices 14, and the locking devices 14 are all located on one side of the main server 10.
[0034] Please refer to Figures 2, 4, 5, and 6. In this embodiment, the positioning and clamping mechanism includes coordinate rods 15, a driving gear 16, a driven gear 17, a motor 18, a toothed belt 19, a movable plate 20, a slide 21, a second electric push rod 22, a sliding plate 23, a fixed plate 24, a first adjusting plate 25, a second adjusting plate 26, a clamp 27, a first electric sliding component 28, a first sliding rod 29, a second electric sliding component 30, a second sliding rod 31, a clamping plate 32, a rubber pad 33, and a third electric push rod 34. Four sets of coordinate rods 15 are provided at the top of the main housing 1, and the coordinate rods 15 are paired and fixedly connected to the inner walls around the main housing 1. One end of each coordinate rod 15 is connected to the driving gear 16 via a bearing, and the other end of each coordinate rod 15 is connected to the driven gear 17 via a bearing. Each of the coordinate rods 15 has a motor 18 at one end, and the output end of each motor 18 is fixedly connected to one end of the drive gear 16. Each coordinate rod 15 has a toothed belt 19 inside, and the inner wall of each toothed belt 19 meshes with the drive gear 16 and the driven gear 17. The top of the main housing 1 has two sets of mutually perpendicular movable plates 20, and both ends of each movable plate 20 are fixedly connected to the middle of the toothed belt 19. The inner wall of each movable plate 20 has symmetrically opened grooves 21. A second electric push rod 22 is installed at the mutually perpendicular middle of each movable plate 20. A sliding plate 23 is slidably connected inside each groove 21, and the middle of each sliding plate 23 is fixedly connected to the second electric push rod 22. A fixed plate 24 is fixedly connected to the output end of the second electric push rod 22. A second electric push rod 22 is installed at the bottom end of the fixed plate 24. An adjusting plate 25 is provided at the bottom of the first adjusting plate 25, and a second adjusting plate 26 is provided at the bottom of the second adjusting plate 26. A clamp 27 is fixedly connected to the bottom of the second adjusting plate 26. A first electric slider 28 is symmetrically slidably connected to the top of the first adjusting plate 25, and the top of each first electric slider 28 is fixedly connected to the bottom of the fixed plate 24. A first slide rod 29 is provided in the middle of each first electric slider 28, and both ends of the first slide rod 29 are fixedly connected to the first adjusting plate 25. A second electric slider 30 is symmetrically slidably connected to the top of the second adjusting plate 26, and the top of each second electric slider 30 is fixedly connected to the bottom of the first adjusting plate 25. A second slide rod 31 is provided in the middle of each second electric slider 30, and both ends of the second slide rod 31 are fixedly connected to the second adjusting plate 26. Both sides of the clamp 27 are... A clamping plate 32 is connected via a rotating shaft. Rubber pads 33 are installed on the inner walls of the clamping plate 32, and the inner walls of the rubber pads 33 are in contact with both sides of the main server 10. Third electric actuators 34 are evenly connected to both sides of the clamp 27 via rotating shafts, and the output ends of the third electric actuators 34 are connected to the top of the clamping plate 32 via rotating shafts. When a user needs to maintain or repair a specific main server 10, they simply input the coordinates of the main server 10 requiring maintenance or repair into the control panel 3. This device can automatically control the automatic sealing door 2, conveyor belt 7, motor 18, and second electric actuator 22 to automatically complete the disassembly and assembly of the main server 10. After the coordinates are input, both sets of motors 18 drive the drive gear 16 to rotate, and the drive gear 16 drives the toothed belt 19 to rotate.The toothed belt 19 controls the movement of the movable plate 20, thereby controlling the position where the two sets of movable plates 20 intersect, i.e., controlling the position of the second electric actuator 22. Simultaneously, the slide plate 23 slides inside the slide groove 21, facilitating the adjustment of the position of the second electric actuator 22. Then, the output end of the second electric actuator 22 drives the fixed plate 24, the first adjusting plate 25, the second adjusting plate 26, the clamp 27, and the clamping plate 32 to move downwards. When the clamping plate 32 is on both sides of the main server 10, the third electric actuator 34 extends, causing the clamping plate 32 to rotate, thereby... The main server 10 is clamped. The rubber pad 33 on the inner wall of the clamping plate 32 increases the friction between the clamping plate 32 and the main server 10, making it easier to clamp the main server 10. At this time, the locking device 14 is unlocked, and the second electric push rod 22 lifts the main server 10 upward, so that the bottom of the main server 10 is no longer inside the mounting slot 8. The motor 18, toothed belt 19 and slide 21 move the main server 10 to the top of the conveyor belt 7. At this time, the automatic sealing door 2 opens, the conveyor belt 7 starts working, and the main server 10 that needs maintenance and repair is moved to the top of the conveyor belt 7. Moved to one side of the main housing 1, the user can then remove the main server 10 for maintenance, repair, or replacement, which is very convenient for the user. When the user needs to install the main server 10, simply place the main server 10 on the conveyor belt 7. The conveyor belt 7 will move the main server 10 to the bottom of the clamp 27, and then clamp and reset the main server 10. During the downward movement, the main server 10 is precisely positioned by the positioning rod 12 and the positioning cylinder 13. The trumpet-shaped positioning cylinder 13 facilitates the insertion of the positioning rod 12, and then... Positioning cylinder 13 controls the position of clamp 27. At this time, clamp 27 allows the second adjusting plate 26 to move at the bottom end of the first adjusting plate 25. Simultaneously, clamp 27, the first adjusting plate 25, and the first adjusting plate 26 can move in another direction at the bottom end of the fixed plate 24, thus enabling automatic adjustment. This facilitates the adjustment of the positions of clamp 27 and the main server 10. Finally, precise positioning is achieved through the upper middle part of positioning cylinder 13, facilitating the installation of the main server 10 and enabling the device to automatically assemble and disassemble the main server 10.
[0035] Please refer to Figure 5. In this embodiment, the low-oxygen mechanism includes a corner piece 35, a gas storage tank 36, an automatic retractor box 37, a first air pipe 38, and a nozzle 39. Both ends of the second electric actuator 22 are fixedly connected to the corner piece 35. One end of the main box 1 is provided with a gas storage tank 36, and the top of the gas storage tank 36 is provided with an automatic retractor box 37. Nozzles 39 are provided at the bottom ends of both sides of the clamp 27, and the nozzles 39 are all located between the clamps 32. The top of each nozzle 39 is connected to a first air pipe 38, and the first air pipe 38 passes through the corner piece 35 and is connected to the gas storage tank 36. The carbon dioxide gas inside the gas storage tank 36 will pass through the automatic retractor box 37, the gas storage tank 36, and the nozzles. Carbon dioxide is released into the interior of the device and circulates internally along with the air. By increasing the concentration of carbon dioxide inside the main chamber 1, the possibility of fire in the device is reduced, thus improving the safety of the device. When a fire breaks out inside the device, the temperature measuring plate 50 at the top of the main server 10 can detect a significant temperature change. The control panel 3 then controls the clamp 27 and nozzle 39 to quickly move towards the fire source. A large amount of carbon dioxide is then sprayed out through the first gas pipe 38 and nozzle 39 to extinguish the fire and isolate oxygen. At the same time, the control panel 3 remotely alerts the user, further improving the safety of the device. It can create a low-oxygen environment to prevent fires and improve the safety of use.
[0036] Please refer to Figures 2, 7, and 8. In this embodiment, the cooling mechanism includes a cooling box 40, a heat conduction box 44, airflow holes 45, air ducts 47, a fan 48, an air storage chamber 49, a temperature measuring plate 50, an air pipe 51, a blower 52, a distribution pipe 53, a drying box 54, a main air pipe 55, and an air blowing hole 56. The cooling box 40 is located at the top of the main box 1. Air ducts 47 are evenly distributed at the top of the main box 1. Temperature measuring plates 50 are evenly distributed on the inner wall of the top of the main box 1, and the direction of the temperature measuring plates 50 is perpendicular to the direction of the air ducts 47. The temperature measuring plates 50 are all located directly above the main server 10. The cooling box 40... A heat transfer box 44 is fixedly connected in the middle. An air storage chamber 49 is located between the top of the heat transfer box 44 and the inner wall of the top of the cooling box 40. Airflow holes 45 are evenly distributed through the top of the heat transfer box 44. Fans 48 are evenly distributed at the top of the main box 1, with both ends of the fans 48 fixedly connected to the inner wall of the cooling box 40. Air pipes 51 are evenly distributed on both sides of the main box 1, with the tops of the air pipes 51 extending through the heat transfer box 44 into the air storage chamber 49. A fan 52 is installed in the middle of each air pipe 51. Air distribution pipes 53 are installed at the bottom of both sides of the main box 1, with the tops of the air distribution pipes 53 respectively... Connected to air duct 51, each of the branch air ducts 53 has a main air duct 55 connected to its adjacent side. The main air ducts 55 are located on both sides of the main server 10. Air vents 56 are evenly distributed at the top of each main air duct 55, with the vents pointing towards the main server 10. The angle between the air vents 56 gradually increases from bottom to top. The top of the main air duct 55 is triangular. Drying boxes 54 are evenly distributed inside each branch air duct 53, located on both sides of the air duct 51. Fans 48 and blowers 52 operate, and air inside the main housing 1 passes through air ducts 47 and airflow holes. 45 enters the interior of the air storage chamber 49. Since the heat transfer box 44 contains coolant, it can reduce the air temperature to a certain extent. The air inside the air storage chamber 49 enters the interior of the air pipe 51. The fan 52 supplements the air flow, thereby accelerating the air to enter the interior of the main air pipe 55 through the air pipe 51 and the distribution pipe 53. Finally, it is sprayed onto the surface of the main server 10 through the air blowing holes 56 with different tilt angles, so that the main server 10 is fully exposed to the air, improving the cooling effect. This provides primary cooling treatment for the main server 10, making it easier for the main server 10 to dissipate heat and improving the heat dissipation effect.
[0037] Please refer to Figures 2, 7, and 8. In this embodiment, the cooling mechanism includes a water collection tank 41, circulating water pipes 42, a water pump 43, and a cooling rod 46. Water collection tanks 41 are provided at both ends of the cooling box 40. Three sets of circulating water pipes 42 are evenly arranged at the top of the cooling box 40, and both ends of the circulating water pipes 42 are connected to the water collection tanks 41. A water pump 43 is provided in the middle of each circulating water pipe 42. Cooling rods 46 are evenly arranged inside the heat transfer box 44. One side of each water collection tank 41 is connected to both ends of the heat transfer box 44 via connecting pipes. When the primary air cooling cannot meet the cooling requirements, the water pump 43 and the cooling rod 46 operate. The cooling rod 46 generates low temperature, which cools the surrounding coolant. The water pump 43 circulates the coolant inside the heat transfer box 44 through the circulating water pipe 42 and the water collection tank 41, so that the coolant inside the heat transfer box 44 is cooled evenly. When air passes through the airflow hole 45, the air will conduct heat with the upper and lower surfaces of the heat transfer box 44, thereby reducing the air temperature and further improving the cooling effect. When the air enters the air distribution pipe 53 through the air pipe 51, it can be dried through the drying box 54, thereby ensuring the dryness of the air, which facilitates the cooling of the circulating air and further improves the heat dissipation effect.
[0038] It should be noted that the control terminals of the control panel 3 are electrically connected to an external power source via an external power supply. The control terminals of the automatic sealing door 2, the first electric push rod 5, the conveyor belt 7, and the locking device 14 are all electrically connected to the control panel 3 for user convenience. The control terminals of the motor 18, the second electric push rod 22, the first electric sliding member 28, the second electric sliding member 30, the third electric push rod 34, and the automatic pipe take-up box 37 are all electrically connected to the control panel 3 for device convenience. The control terminals of the water pump 43, the cooling rod 46, the fan 48, the temperature measuring plate 50, and the blower 52 are all electrically connected to the control panel 3 for device convenience.
[0039] The device operates as follows:
[0040] Step 1: Primary heat dissipation. This device is in a sealed state, which can prevent external dust from entering the device and thus affecting the heat dissipation effect. Fan 48 and blower 52 are working. The air inside the main box 1 enters the air storage chamber 49 through the air duct 47 and airflow hole 45. The air inside the air storage chamber 49 enters the main air pipe 55 through the air pipe 51 and air distribution pipe 53. Finally, it is sprayed onto the surface of the main server 10 through the air blowing hole 56, which can make the main server 10 fully exposed to airflow, improve the cooling effect, and thus perform primary cooling treatment on the main server 10.
[0041] Step 2: In a low-oxygen environment, the carbon dioxide gas inside the gas storage tank 36 will be discharged into the interior of this device through the automatic pipe take-up box 37, the gas storage tank 36 and the nozzle 39. The carbon dioxide will circulate internally along with the air, thereby increasing the concentration of carbon dioxide inside the main box 1 and reducing the possibility of fire in this device.
[0042] Step 3: Further heat dissipation. When the primary air cooling cannot meet the cooling requirements, the water pump 43 and the cooling rod 46 work. The working cooling rod 46 generates low temperature, which cools the surrounding coolant. The water pump 43 enables the coolant inside the heat transfer box 44 to circulate through the circulating water pipe 42 and the water collection tank 41. When air passes through the airflow hole 45, the air temperature is reduced, thereby improving the cooling effect.
[0043] Step 4: Maintenance and Repair. When a user needs to perform maintenance and repair on a specific main server 10, they simply input the coordinates of the main server 10 requiring maintenance and repair into the control panel 3. This device can automatically control the automatic sealing door 2, conveyor belt 7, motor 18, and second electric push rod 22 to automatically complete the disassembly and assembly of the main server 10. Both sets of motors 18 drive the drive gear 16 and toothed belt 19 to rotate, thereby controlling the intersection position of the two sets of movable plates 20, i.e., controlling the position of the second electric push rod 22. Then, the output end of the second electric push rod 22 drives the fixed plate 24. The first adjusting plate 25, the second adjusting plate 26, the clamp 27, and the clamping plate 32 move downwards. When the clamping plate 32 is on both sides of the main server 10, the third electric push rod 34 extends, causing the clamping plate 32 to rotate and clamp the main server 10. At this time, the locking device 14 unlocks, and the second electric push rod 22 lifts the main server 10 upwards and moves it to the top of the conveyor belt 7. At this time, the automatic sealing door 2 opens, and the conveyor belt 7 operates, thereby moving the main server 10 that needs maintenance and repair to one side of the main box 1. At this time, the user can take out the main server 10 for maintenance, repair, and replacement.
[0044] Step 5: When the user needs to install the main server 10, simply place the main server 10 on the conveyor belt 7. The conveyor belt 7 will move the main server 10 to the bottom of the clamp 27, and then clamp and reset the main server 10. During the downward movement, the main server 10 is precisely positioned by the positioning rod 12 and the positioning cylinder 13. The flared positioning cylinder 13 facilitates the insertion of the positioning rod 12. Then, the fixing plate 24, the first adjusting plate 25, the second adjusting plate 26, the first electric slider 28, the first slide rod 29, the second electric slider 30, and the second slide rod 31 are automatically adjusted to ensure the normal operation of the main server 10. Then, the second electric push rod 22 is reset, and at the same time, the first electric slider 28 and the second electric slider 30 are automatically centered and reset.
[0045] Step Six: Fire Extinguishing and Maintenance. When a fire breaks out inside the device, the temperature measuring plate 50 at the top of the main server 10 can detect a significant temperature change. The control panel 3 then controls the clamp 27 and nozzle 39 to quickly move towards the fire source. A large amount of carbon dioxide is then sprayed through the first gas pipe 38 and nozzle 39 to extinguish the fire and isolate oxygen. At the same time, the control panel 3 remotely alerts the user, further improving the safety of the device. The user can open the side sealing plates 4 on both sides using the first electric push rod 5, which facilitates comprehensive maintenance and repair work.
[0046] Working Principle: When the user is using this device, it is in a sealed state, which can prevent external dust from entering the device and affecting the heat dissipation effect. It also reduces the user's workload by eliminating the need for cleaning. Fan 48 and blower 52 operate, and air from inside the main casing 1 enters the air storage chamber 49 through the air duct 47 and airflow hole 45. Since the heat transfer box 44 contains coolant, it can reduce the air temperature to a certain extent. Air from the air storage chamber 49 enters the air pipe 51, and the blower 52 supplements the airflow, accelerating the airflow through the air pipe 51 and the distribution pipe 53 into the main air pipe 55. Finally, the air is sprayed onto the surface of the main server 10 through the air outlets 56 at different angles, ensuring the main server... The device 10 receives airflow from all sides, improving the cooling effect and thus providing primary cooling for the main server 10. Simultaneously, carbon dioxide gas inside the gas storage tank 36 is discharged into the device's interior through the automatic pipe recovery box 37, the gas storage tank 36, and the nozzle 39. The carbon dioxide circulates internally with the air, increasing the concentration of carbon dioxide inside the main unit 1, thereby reducing the possibility of fire and improving the device's safety. Since the air in the middle of the device rises from bottom to top, and high-temperature air is less dense, it also rises. Therefore, the temperature of the air inside the device can be detected by the temperature measuring plate 50, thus determining the heat generated by the main server 10. When primary air cooling is insufficient to meet the cooling requirements, the water pump 43 and the cooling rod 46 operate. The system generates low temperatures, cooling the surrounding coolant. Water pump 43 circulates the coolant inside the heat transfer box 44 via circulating water pipe 42 and water collection tank 41, ensuring uniform cooling. When air passes through airflow hole 45, it conducts heat with the upper and lower surfaces of the heat transfer box 44, lowering the air temperature and further improving cooling. Air entering the distribution pipe 53 through air pipe 51 is dried by drying box 54, ensuring dryness. When a user needs to maintain or repair a specific main server 10, they simply input the coordinates of that server into control panel 3. This device can automatically control the automatic sealing door 2, conveyor belt 7, and motor 1. 8. The second electric actuator 22 operates to automatically complete the disassembly and assembly of the main server 10. After the coordinate input is completed, both sets of motors 18 drive the drive gear 16 to rotate. The drive gear 16 drives the toothed belt 19 to rotate, and the toothed belt 19 controls the movement of the movable plate 20, thereby controlling the position where the two sets of movable plates 20 intersect, that is, controlling the position of the second electric actuator 22. At the same time, the slide plate 23 slides inside the slide groove 21, which facilitates the adjustment of the position of the second electric actuator 22. Then, the output end of the second electric actuator 22 drives the fixed plate 24, the first adjusting plate 25, the second adjusting plate 26, the clamp 27, and the clamping plate 32 to move downward. When the clamping plate 32 is on both sides of the main server 10, the third electric actuator 34 extends, thereby causing the clamping plate 32 to rotate.This clamps the main server 10. The rubber pad 33 on the inner wall of the clamping plate 32 increases the friction between the clamping plate 32 and the main server 10, making it easier to clamp the main server 10. At this time, the locking device 14 unlocks, and the second electric push rod 22 lifts the main server 10 upward, so that the bottom of the main server 10 is no longer inside the mounting slot 8. Then, the motor 18, toothed belt 19, and slide 21 move the main server 10 to the top of the conveyor belt 7. At this time, the automatic sealing door 2 opens, and the conveyor belt 7 operates, thereby moving the main server 10 that needs maintenance and repair to one side of the main box 1. At this time, the user can take out the main server 10 for maintenance, repair, and replacement, which is very convenient for the user. To install the main server 10, simply place it on the conveyor belt 7. The conveyor belt 7 will move the main server 10 to the bottom of the clamp 27, then clamp and reset it. During the downward movement, the main server 10 is precisely positioned by the positioning rod 12 and the positioning cylinder 13. The trumpet-shaped positioning cylinder 13 facilitates the insertion of the positioning rod 12. The positioning cylinder 13 then controls the position of the clamp 27. At this time, the clamp 27 allows the second adjusting plate 26 to move at the bottom of the first adjusting plate 25. Simultaneously, the clamp 27, the first adjusting plate 25, and the first adjusting plate 26 can move in another direction at the bottom of the fixed plate 24, thus enabling automatic adjustment. To facilitate the adjustment of the positions of the clamp 27 and the main server 10, precise positioning is achieved through the upper middle part of the positioning cylinder 13, thus facilitating the installation of the main server 10. Finally, the main server 10 is locked in place by the locking device 14, ensuring the bottom of the main server 10 connects to the connecting slot 9, guaranteeing its normal operation. Then, the second electric push rod 22 resets, and simultaneously, the first electric slide 28 and the second electric slide 30 automatically center and reset. When an internal fire occurs, the temperature measuring plate 50 at the top of the main server 10 can detect a significant temperature change, thereby controlling the clamp 27 and nozzle 39 to quickly move towards the fire source via the control panel 3, and then spraying air through the first air pipe 38 and nozzle 39. It emits a large amount of carbon dioxide to extinguish the fire and isolate oxygen. Simultaneously, the control panel 3 remotely alerts the user, further enhancing the safety of the device. When the user needs comprehensive maintenance and repair, the side sealing plates 4 on both sides can be opened using the first electric push rod 5, facilitating comprehensive maintenance and repair work. This device has excellent heat dissipation and dustproof effects during use. It is also highly intelligent, eliminating the need for the user to enter the device to disassemble or reassemble the main server 10, greatly reducing the user's workload and simplifying maintenance. It also ensures the cleanliness of the device's interior, maintaining a dust-free environment, thereby improving heat dissipation and safety, making it very user-friendly.
[0047] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.
Claims
1. A network security operation and maintenance protection device for a power monitoring system, characterized in that, The system includes a main box (1), a positioning and clamping mechanism, a low-oxygen mechanism, a cooling mechanism, and a cooling system. One end of the main box (1) is equipped with an automatic sealing door (2), and another end is equipped with a control panel (3). Both sides of the main box (1) are connected to side sealing plates (4) via rotating shafts. The upper middle parts of both ends of the side sealing plates (4) are connected to first electric push rods (5) via rotating shafts, and one end of each first electric push rod (5) is connected to the inner wall of the main box (1) via a rotating shaft. A mounting base (6) is fixedly connected to the inner wall at the bottom of the main box (1). One end of the mounting base (6) is equipped with a conveyor belt (7), and the top of the conveyor belt (7) is evenly decorated with... The mounting slot (8) has a connecting slot (9) on the inner wall at the bottom. The main server (10) is installed inside the mounting slot (8). The mounting slot (8) has a positioning slot (11) at both ends. The positioning slot (11) has a positioning rod (12) fixedly connected to the inner wall at the bottom. The main server (10) has a positioning cylinder (13) at both ends. The upper middle part of the positioning cylinder (13) is slidably connected to the positioning rod (12). The lower middle part of the positioning cylinder (13) is horn-shaped. The top of the mounting base (6) is evenly provided with locking devices (14). The locking devices (14) are all located on one side of the main server (10).The cooling mechanism includes a cooling box (40), a heat conduction box (44), an airflow hole (45), an air duct (47), a fan (48), an air storage chamber (49), a temperature measuring plate (50), an air pipe (51), a blower (52), a distribution pipe (53), a drying box (54), a main air pipe (55), and an air blowing hole (56). The cooling box (40) is located at the top of the main box (1). Air ducts (47) are evenly distributed at the top of the main box (1). Temperature measuring plates (50) are evenly distributed on the inner wall of the top of the main box (1), and the direction of the temperature measuring plates (50) is perpendicular to the direction of the air ducts (47). The temperature measuring plates (50) are all located on the main server (10). Above the cooling box (40), a heat transfer box (44) is fixedly connected to the middle of the cooling box (40). The top of the heat transfer box (44) and the inner wall of the top of the cooling box (40) form an air storage chamber (49). Air flow holes (45) are evenly opened through the top of the heat transfer box (44). Fans (48) are evenly arranged at the top of the main box (1), and both ends of the fans (48) are fixedly connected to the inner wall of the cooling box (40). Air pipes (51) are evenly arranged on both sides of the main box (1), and the top of the air pipes (51) extends through the heat transfer box (44) to the interior of the air storage chamber (49). A fan is arranged in the middle of each air pipe (51). 52), air distribution pipes (53) are provided at the bottom of both sides of the main box (1), and the top of each air distribution pipe (53) is connected to an air pipe (51). The sides of the air distribution pipes (53) that are close to each other are connected to a main air pipe (55), and the main air pipes (55) are located on both sides of the main server (10). The top of each main air pipe (55) is evenly provided with air blowing holes (56), and the opening direction of each air blowing hole (56) is pointing towards the main server (10). The inclination angle between the air blowing holes (56) gradually increases from bottom to top. The top of the main air pipe (55) is triangular. Drying boxes (54) are evenly provided inside each air distribution pipe (53). The drying boxes (54) are located on both sides of the air pipe (51); the cooling mechanism includes a water collection tank (41), a circulating water pipe (42), a water pump (43), and a cooling rod (46). Water collection tanks (41) are provided at both ends of the cooling box (40). Three sets of circulating water pipes (42) are evenly arranged at the top of the cooling box (40), and both ends of the circulating water pipes (42) are connected to the water collection tanks (41). A water pump (43) is provided in the middle of each circulating water pipe (42). Cooling rods (46) are evenly arranged inside the heat conduction box (44). One side of the water collection tank (41) is connected to both ends of the heat conduction box (44) via a connecting pipe.
2. The network security operation and maintenance protection device for a power monitoring system according to claim 1, characterized in that: The control terminal of the control panel (3) is electrically connected to an external power source via an external power supply. The control terminals of the automatic sealing door (2), the first electric push rod (5), the conveyor belt (7), and the locking device (14) are all electrically connected to the control panel (3).
3. The network security operation and maintenance protection device for a power monitoring system according to claim 2, characterized in that: The positioning and clamping mechanism includes coordinate rods (15), a driving gear (16), a driven gear (17), a motor (18), a toothed belt (19), a movable plate (20), a slide groove (21), a second electric push rod (22), a sliding plate (23), a fixed plate (24), a first adjusting plate (25), a second adjusting plate (26), a clamp (27), a first electric sliding component (28), a first sliding rod (29), a second electric sliding component (30), a second sliding rod (31), a clamping plate (32), a rubber pad (33), and a third electric push rod (34). The top of the main box (1) is provided with four sets of coordinate rods (15), and the coordinate rods (15) are paired and fixedly connected to the inner walls around the main box (1). One of the coordinate rods (15) Each end of the coordinate rod (15) is connected to a drive gear (16) via a bearing, and the other end of each coordinate rod (15) is connected to a driven gear (17) via a bearing. A motor (18) is installed at one end of each coordinate rod (15), and the output end of each motor (18) is fixedly connected to one end of the drive gear (16). A toothed belt (19) is installed inside each coordinate rod (15), and the inner wall of the toothed belt (19) meshes with both the drive gear (16) and the driven gear (17). Two sets of mutually perpendicular movable plates (20) are installed at the top of the main housing (1), and both ends of the movable plates (20) are fixedly connected to the middle of the toothed belt (19). The inner walls of each movable plate (20) are symmetrically provided with sliding grooves (21). (20) A second electric actuator (22) is provided at the middle of the mutually perpendicular parts. A slide plate (23) is slidably connected inside the slide groove (21), and the middle of the slide plate (23) is fixedly connected to the second electric actuator (22). A fixed plate (24) is fixedly connected to the output end of the second electric actuator (22). A first adjusting plate (25) is provided at the bottom end of the fixed plate (24). A second adjusting plate (26) is provided at the bottom end of the first adjusting plate (25). A clamp (27) is fixedly connected to the bottom end of the second adjusting plate (26). A first electric sliding member (28) is symmetrically slidably connected to the top end of the first adjusting plate (25), and the top end of the first electric sliding member (28) is fixedly connected to the bottom end of the fixed plate (24). Each of the electric sliding parts (28) is provided with a first sliding rod (29) in the middle, and both ends of the first sliding rod (29) are fixedly connected to the first adjusting plate (25). The top of the second adjusting plate (26) is symmetrically slidably connected with a second electric sliding part (30), and the top of the second electric sliding part (30) is fixedly connected to the bottom of the first adjusting plate (25). Each of the second electric sliding parts (30) is provided with a second sliding rod (31) in the middle, and both ends of the second sliding rod (31) are fixedly connected to the second adjusting plate (26). Both sides of the clamp (27) are connected to a clamping plate (32) through a rotating shaft. The inner wall of the clamping plate (32) is provided with a rubber pad (33), and the inner wall of the rubber pad (33) is in contact with both sides of the main server (10).Both sides of the clamp (27) are evenly connected to third electric actuators (34) via rotating shafts, and the output ends of the third electric actuators (34) are connected to the top of the clamp plate (32) via rotating shafts.
4. The network security operation and maintenance protection device for a power monitoring system according to claim 3, characterized in that: The low-oxygen mechanism includes a corner piece (35), a gas storage box (36), an automatic pipe retractor (37), a first air pipe (38), and a nozzle (39). Both ends of the second electric push rod (22) are fixedly connected to the corner piece (35). One end of the main box (1) is provided with a gas storage box (36). The top of the gas storage box (36) is provided with an automatic pipe retractor (37). The bottom ends of both sides of the clamp (27) are provided with nozzles (39), and the nozzles (39) are all located between the clamps (32). The top of the nozzles (39) is connected to the first air pipe (38), and the first air pipe (38) passes through the corner piece (35) and is connected to the gas storage box (36) through the first air pipe (38).
5. A network security operation and maintenance protection device for a power monitoring system according to claim 4, characterized in that: The control terminals of the motor (18), the second electric push rod (22), the first electric slide (28), the second electric slide (30), the third electric push rod (34), and the automatic pipe take-up box (37) are all electrically connected to the control panel (3).
6. A network security operation and maintenance protection device for a power monitoring system according to claim 5, characterized in that: The control terminals of the water pump (43), cooling rod (46), fan (48), temperature measuring plate (50) and blower (52) are all electrically connected to the control panel (3).
7. A method for operating a network security operation and maintenance protection device for a power monitoring system as described in claim 6, characterized in that: Step 1: Primary heat dissipation. This device is in a sealed state, which can prevent external dust from entering the device and thus affecting the heat dissipation effect. The fan (48) and blower (52) are working. The air inside the main box (1) enters the air storage chamber (49) through the air channel (47) and airflow hole (45). The air inside the air storage chamber (49) enters the main air pipe (55) through the air pipe (51) and air distribution pipe (53). Finally, it is sprayed onto the surface of the main server (10) through the air blowing hole (56), which can make the main server (10) fully exposed to the airflow and improve the cooling effect, thereby performing primary cooling treatment on the main server (10); Step 2: Low oxygen environment. The air storage box (36) inside The carbon dioxide gas will be discharged into the interior of the device through the automatic collection box (37), the gas storage box (36) and the nozzle (39). The carbon dioxide will circulate internally along with the air, thereby increasing the concentration of carbon dioxide inside the main box (1) and reducing the possibility of fire in the device. Step 3: Further heat dissipation. When the primary air cooling cannot meet the cooling requirements, the water pump (43) and the cooling rod (46) will work. The working cooling rod (46) will generate low temperature, which will cool the surrounding coolant. The water pump (43) can make the coolant inside the heat transfer box (44) circulate through the circulating water pipe (42) and the water collection box (41). When the air passes through the airflow hole (45), it will reduce the temperature of the cooling system. The air temperature improves the cooling effect; Step 4: Maintenance and repair. When the user needs to perform maintenance and repair on a certain main server (10), the coordinates of the main server (10) that only needs maintenance and repair can be entered into the control panel (3). This device can automatically control the automatic sealing door (2), conveyor belt (7), motor (18) and second electric push rod (22) to work and automatically complete the disassembly and assembly of the main server (10). Both sets of motors (18) drive the active gear (16) and toothed belt (19) to rotate, thereby controlling the position where the two sets of movable plates (20) intersect, that is, controlling the position of the second electric push rod (22). Then the output end of the second electric push rod (22) drives the fixed plate (2 4) The first adjusting plate (25), the second adjusting plate (26), the clamp (27) and the clamp (32) move downward. When the clamp (32) is on both sides of the main server (10), the third electric push rod (34) extends, thereby causing the clamp (32) to rotate and clamp the main server (10). At this time, the locking device (14) is unlocked, and the second electric push rod (22) lifts the main server (10) upward and moves it to the top of the conveyor belt (7). At this time, the automatic sealing door (2) opens, and the conveyor belt (7) works, thereby moving the main server (10) that needs maintenance and repair to one side of the main box (1). At this time, the user can take out the main server (10) for maintenance, repair and replacement.Step 5: When the user needs to install the main server (10), simply place the main server (10) on the conveyor belt (7). The conveyor belt (7) will move the main server (10) to the bottom of the clamp (27), and then clamp the main server (10) back to its original position. During the downward movement of the main server (10), it is precisely positioned by the positioning rod (12) and the positioning cylinder (13). The horn-shaped positioning cylinder (13) facilitates the insertion of the positioning rod (12). Then, the main server (10) is automatically adjusted by the fixing plate (24), the first adjusting plate (25), the second adjusting plate (26), the first electric slider (28), the first sliding rod (29), the second electric slider (30), and the second sliding rod (31), thereby ensuring the main server (10) is in a stable position. Normal operation, then the second electric push rod (22) resets, and at the same time the first electric slide (28) and the second electric slide (30) automatically center and reset; Step 6: Fire extinguishing maintenance, when the internal fire of this device occurs, the temperature measuring plate (50) at the top of the main server (10) can detect obvious temperature changes, and thus control the clamp (27) and nozzle (39) to quickly move to the fire source position through the control panel (3), and then spray a large amount of carbon dioxide through the first gas pipe (38) and nozzle (39) to extinguish the fire and isolate oxygen. At the same time, the control panel (3) remotely reminds the user to further improve the safety of the device. The user can open the side sealing plates (4) on both sides through the first electric push rod (5), which facilitates the user's all-round maintenance and repair work.
Citation Information
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