Intelligent monitoring equipment for power utilization safety

By designing intelligent monitoring equipment for electrical safety and utilizing a gear transmission system and a flame-retardant powder spraying mechanism, the problem of hidden electrical failures in ecologically sensitive areas has been resolved, rapid circuit breaking and warnings have been achieved, and the ecological environment and wildlife safety have been protected.

CN120657955AInactive Publication Date: 2025-09-16HUNAN VOCATIONAL INST OF SAFETY TECH
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Patent Information

Application Number
CN202510813006.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-18
Publication Date
2025-09-16
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In ecologically sensitive areas such as forests and wetlands, hidden faults such as short circuits and leakages in power facilities are difficult to detect and deal with in a timely manner, leading to frequent fires and casualties of wild animals by electric shock. Existing protective measures are ineffective for wild animals.

Method used

An intelligent electricity safety monitoring device is designed, which includes components such as a monitoring box, an electric shock tube, an alarm sphere, and a flame retardant powder spraying box. A gear transmission system is used to achieve rapid circuit disconnection, alarm, and flame retardant powder spraying when current is abnormal. Combined with solar power supply, it provides real-time monitoring and warnings.

Benefits of technology

It achieves rapid disconnection and timely warning of electrical faults, reduces fire risks, protects the ecological environment and wildlife safety, and improves fault detection efficiency and ecological protection effects.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an electric safety intelligent monitoring device which comprises a monitoring box, an electric shock pipe is fixedly connected to the upper portion of the monitoring box, an alarm ball is fixedly connected to the upper portion of the electric shock pipe, a long strip is arranged at the bottom of the electric shock pipe and rotationally connected with a connecting rod, and the end, away from the long strip, of the connecting rod is eccentrically arranged on the surface of a rotating disc. The rotating disc is in transmission connection with a central gear, the central gear is in meshing connection with a wide toothed plate, the wide toothed plate is fixedly connected with a fitting block, the central gear drives the fan blades to rotate through a plurality of sets of gears and belt transmission, and flame-retardant powder is evenly blown away and laid on the ground. Meanwhile, a warning signal sent by the alarm ball body not only reminds pedestrians to be far away from a dangerous area, but also promotes wild animals to avoid live-line fault points through stimulation of sound, light and the like. The double protection mechanism not only reduces the probability of electric shock casualties caused by the fact that wild animals enter a dangerous area by mistake, but also can reduce fire spreading through the isolation effect of the flame-retardant powder at the fire germination stage.
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Description

Technical Field

[0001] The present invention relates to the technical field of electricity safety equipment, and in particular to an intelligent electricity safety monitoring device. Background Art

[0002] In modern society, electricity, as an indispensable secondary energy source, has permeated every aspect of production and life. Its application has significantly boosted economic development and improved living standards, but this has been accompanied by increasingly prominent electrical safety issues. With the rapid increase in the number of electrical devices and the increasing complexity of their use, electrical safety incidents have become frequent. Short-circuit failures are common in some companies due to improper wiring and aging equipment that has not been promptly maintained. The high-temperature arc generated by a short circuit can not only burn expensive production equipment, causing production losses, but can also cause fires. Furthermore, forest and grassland fires caused by electrical fires can destroy large amounts of vegetation and damage wildlife habitats.

[0003] However, in ecologically sensitive areas such as forests and wetlands, the potential for short circuits and electrical leakage in power facilities cannot be ignored. Due to the complex environments and long inspection cycles in these areas, if electrical equipment malfunctions and is not promptly repaired, the resulting sparks from short circuits or live areas from leakage can not only cause forest fires but also directly harm pedestrians and wildlife, resulting in unpredictable losses. Furthermore, while some electrical boxes are equipped with protective strips and warning signs, these safeguards are only effective for humans with the ability to understand them. Driven by instincts such as foraging and migration, wild animals are unable to recognize warning signals and are easily drawn into dangerous areas, leading to frequent electric shock injuries and deaths. Summary of the Invention

[0004] The purpose of the present invention is to solve the problem in the prior art that short circuits, leakages and other hidden faults in power facilities in ecologically sensitive areas such as forests and wetlands cannot be ignored. Due to the complex environment and long inspection cycles in such areas, once electrical equipment becomes abnormal and is not repaired in time, the electric sparks generated by the short circuit or the charged area formed by the leakage may not only cause forest fires, but also cause direct harm to pedestrians and wild animals passing by, resulting in unpredictable losses. In addition, although some electrical boxes are equipped with protective belts and warning signs, these protective measures are only effective for humans with the ability to understand. Wild animals are driven by instincts such as foraging and migration and cannot recognize warning information. They are very likely to enter dangerous areas, resulting in frequent electric shock casualties. Therefore, an intelligent monitoring device for electricity safety is proposed.

[0005] In order to achieve the above object, the present invention adopts the following technical solutions:

[0006] An intelligent monitoring device for electricity safety, comprising a monitoring box, wherein an electric shock tube is fixedly connected to the top of the monitoring box, an alarm ball is fixedly connected to the top of the electric shock tube, a long strip is provided at the bottom of the electric shock tube, the long strip is rotatably connected to a connecting rod, the end of the connecting rod away from the long strip is eccentrically arranged on the surface of a rotating disk, the rotating disk is transmission-connected to a central gear, the central gear is meshedly connected to a wide tooth plate, the wide tooth plate is fixedly connected to a fitting block, the side of the fitting block is provided with a power connection block connected to itself to form a closed loop, the central gear transmission connection It is connected to a second bevel gear, which is meshed with the first bevel gear. The first bevel gear passes through the monitoring box and is fixedly connected to the meshing pinion. The meshing pinion is meshed with a slotted gear plate. The surface of the slotted gear plate is provided with a transparent curved groove for the sliding column to slide. The sliding column is fixed on the surface of the extension tube. The extension tube is rotatably connected to the incision gear at the incision. The incision gear is transmission-connected to the third bevel gear. The third bevel gear is meshed with the fourth bevel gear. The fourth bevel gear passes through the flame retardant powder spilling box and is fixedly connected to the spraying pipe.

[0007] The above technical solution further includes:

[0008] The rotating disk is rotatably connected to the monitoring box, and the rotating disk is connected to a second belt for transmission, and the second belt is connected to a central gear at one end away from the rotating disk for transmission, and the central gear is connected to the monitoring box for rotation, and the central gear is connected to a first belt for transmission, and the first belt is connected to a second bevel gear at one end away from the central gear for transmission, and the second bevel gear is fixed on the side of the support block inside the monitoring box, and the notch gear is connected to a third belt for transmission, and the third belt is connected to a third bevel gear at one end away from the notch gear, and the bottom of the fourth bevel gear passes through the flame retardant powder scattering box and is fixedly connected to a fan blade.

[0009] The meshing pinion is rotatably connected to a multi-directional extension frame, and a plurality of long grooves are provided on the surface of the multi-directional extension frame. A slotted rack is provided in the plurality of long grooves on the surface of the multi-directional extension frame. A long rod is provided at the center position above the multi-directional extension frame, and the long rod at the center position above the multi-directional extension frame is fixedly connected to the bottom of the monitoring box. When the bonding block contacts the power connection block, a closed circuit is formed, and when the bonding block is separated from the power connection block, an open circuit is formed. When the sliding column slides in the transparent curved groove, the slotted gear plate rotates clockwise and the extension tube continuously extends at one end of the multi-directional extension frame. When the slotted gear plate rotates counterclockwise, when the sliding column slides inside the transparent curved groove, the extension tube gradually moves away from the center position of the slot gear plate along the groove portion of the multi-directional extension frame.

[0010] The end of the bonding block away from the power connection block is fixedly connected to a conductive tube, the conductive tube is slidably connected to the power connection outer tube, the power connection outer tube is fixedly connected to a first terminal, the end of the power connection block away from the bonding block is fixedly connected to a second terminal, and the upper part of the bonding block is fixedly connected to a power monitor body.

[0011] A hinge is provided on the side of the monitoring box, and the hinge on the side of the monitoring box is fixedly connected to the box door.

[0012] The flame retardant powder distribution box houses a moisture-proof box for storing the powder. A sprayer for dispensing the powder is located on one side of the box. The sprayer runs through the box and connects to a spray pipe at its base. The sprayer on one side of the box is connected to the spray pipe at the base. When the power monitor detects an abnormal current flow, the central gear rotates, triggering a series of actions. The sprayer precisely delivers the powder to the spray pipe, where it is then dispersed evenly across the ground by the fan blades, effectively preventing the spread of fire.

[0013] A solar panel is installed above the monitoring box to power the motor that controls the rotation of the central gear. Forests and wetlands are often remote areas, making external power sources difficult and costly to install. The solar panel converts solar energy into electricity to power the motor, reducing reliance on the traditional power grid, lowering energy consumption and environmental pollution, and meeting the environmental protection requirements of the ecological region.

[0014] The door features a display screen that displays the internal environment of the monitoring box. Without opening the door, workers can access real-time information about the internal environment, such as current levels and equipment operating status. This helps identify potential problems promptly, improves troubleshooting and resolution efficiency, and reduces maintenance time and costs.

[0015] The monitoring box is equipped with a track to support the sliding strip. When the power monitor detects an abnormal current flow, the central gear rotates, driving the rotating disk, connecting rod, and other components. The strip must slide steadily along the track to accurately contact the electric shock tube. The track provides stable support and guidance for the strip, ensuring a smooth and accurate sliding process, avoiding wobbling or deviation that could lead to misoperation or failure to trigger subsequent alarms and circuit breakers.

[0016] Holes for wiring are provided on both sides of the monitoring box. The extension tube is slidably connected to the multi-directional extension frame. The position and length of the extension tube can be flexibly adjusted to meet actual needs, thereby varying the spray range and coverage area of ​​the flame retardant powder. This allows for better adaptation to varying site conditions and electrical fault scenarios, enhancing flame retardancy.

[0017] The present invention has the following beneficial effects:

[0018] 1. In this invention, when the current flux is abnormal or poses a significant risk, the central gear is quickly triggered to rotate, driving the wide-toothed plate to move the bonding block away from the power connection block, thereby breaking the circuit. Simultaneously, the alarm sphere illuminates and sounds an alarm. This mechanism rapidly disconnects the faulty circuit and provides a timely warning, significantly shortening the response time compared to traditional protection devices. It effectively prevents the high temperatures and sparks caused by the continued short-circuit current, fundamentally curbing the risk of fires caused by electrical faults in ecologically sensitive areas such as forests and wetlands, and protecting the regional ecosystem and vegetation.

[0019] 2. In the present invention, a central gear, driven by multiple gears and belts, drives the fan blades to rotate, evenly dispersing the flame retardant powder onto the ground. Simultaneously, the warning signal emitted by the alarm sphere not only reminds pedestrians to stay away from the danger zone, but also encourages wildlife to avoid the live fault point through sound and light stimulation. This dual protection mechanism not only reduces the probability of electric shock and casualties from wildlife accidentally entering the danger zone, but also reduces the spread of fire in the budding stage through the isolation effect of the flame retardant powder, providing a safe living environment for animals and plants in the area, which is of great significance for maintaining biodiversity. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 This is a structural diagram of an intelligent power safety monitoring device proposed by the present invention;

[0021] Figure 2 Schematic diagram of the internal structure of the monitoring box in the present invention;

[0022] Figure 3 for Figure 2 A in the middle is an enlarged schematic diagram;

[0023] Figure 4 This is a schematic structural diagram of the flame retardant mechanism in the present invention;

[0024] Figure 5 It is a partial structural diagram of the present invention;

[0025] Figure 6 It is a partial structural diagram of the present invention;

[0026] Figure 7 It is a schematic diagram of the local structure of the present invention;

[0027] Figure 8 It is a schematic diagram of the bottom of part of the structure in the present invention.

[0028] In the figure: 1. Monitoring box; 2. Box door; 3. Alarm ball; 4. Electric shock tube; 5. First bevel gear; 6. Second bevel gear; 7. First belt; 8. Central gear; 9. Power connection block; 10. Fitting block; 11. Conductive tube; 12. External power connection tube; 13. Power consumption monitor body; 14. Second belt; 15. Rotating disk; 16. Connecting rod; 17. Long strip; 18. First terminal; 19. Second terminal; 20. Slotted gear disk; 21. Transparent curved groove; 22. Sliding column; 23. Engaging pinion; 24. Extension tube; 25. Multi-directional extension frame; 26. Slotted rack; 27. Flame retardant powder spill box; 28. Moisture-proof box; 29. ​​Third bevel gear; 30. Fourth bevel gear; 31. Third belt; 32. Notched gear; 33. Fan blade; 34. Spray pipe; 35. Wide tooth plate. DETAILED DESCRIPTION

[0029] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0030] See also Figures 1-8 As shown, the present invention is an intelligent monitoring device for electricity safety, including a monitoring box 1, an electric shock tube 4 is fixedly connected to the top of the monitoring box 1, an alarm ball 3 is fixedly connected to the top of the electric shock tube 4, a long strip 17 is provided at the bottom of the electric shock tube 4, the long strip 17 is rotatably connected to a connecting rod 16, and the end of the connecting rod 16 away from the long strip 17 is eccentrically arranged on the surface of a rotating disk 15, the rotating disk 15 is transmission-connected to a central gear 8, the central gear 8 is meshedly connected to a wide tooth plate 35, the wide tooth plate 35 is fixedly connected to a fitting block 10, and a power connection block 9 connected to itself to form a closed loop is provided on the side of the fitting block 10, and the central gear 8 is transmission-connected to There is a second bevel gear 6, which is meshed with the first bevel gear 5. The first bevel gear 5 passes through the monitoring box 1 and is fixedly connected to the meshing pinion 23. The meshing pinion 23 is meshed with the slotted gear plate 20. The surface of the slotted gear plate 20 is provided with a transparent curved groove 21 for the sliding column 22 to slide. The sliding column 22 is fixed on the surface of the extension tube 24. The extension tube 24 is rotatably connected to the incision gear 32 at the incision. The incision gear 32 is transmission-connected to the third bevel gear 29. The third bevel gear 29 is meshed with the fourth bevel gear 30. The fourth bevel gear 30 passes through the flame retardant powder spilling box 27 and is fixedly connected to the spraying pipe 34.

[0031] In one embodiment, for the above-mentioned rotating disk 15, the rotating disk 15 is rotatably connected to the monitoring box 1, and the rotating disk 15 is transmission-connected to the second belt 14, and the end of the second belt 14 away from the rotating disk 15 is transmission-connected to the central gear 8, and the central gear 8 is rotationally connected to the monitoring box 1, and the central gear 8 is transmission-connected to the first belt 7, and the end of the first belt 7 away from the central gear 8 is transmission-connected to the second bevel gear 6, and the second bevel gear 6 is fixed to the side of the support block inside the monitoring box 1, and the notch gear 32 is transmission-connected to the third belt 31, and the end of the third belt 31 away from the notch gear 32 is transmission-connected to the third bevel gear 29, and the bottom of the fourth bevel gear 30 passes through the flame retardant powder spilling box 27 and is fixedly connected to the fan blade 33.

[0032] In one embodiment, for the above-mentioned meshing pinion 23, the meshing pinion 23 is rotatably connected to a multi-directional extension frame 25, and a plurality of long grooves are provided on the surface of the multi-directional extension frame 25. A slotted rack 26 is provided in the plurality of long grooves on the surface of the multi-directional extension frame 25. A long rod is provided at the center position above the multi-directional extension frame 25. The long rod at the center position above the multi-directional extension frame 25 is fixedly connected to the bottom of the monitoring box 1. When the bonding block 10 contacts the power connection block 9, a closed circuit is formed. When the bonding block 10 is separated from the power connection block 9, an open circuit is formed. When the sliding column 22 slides in the transparent curved groove 21, the slotted gear disk 20 rotates clockwise and the extension tube 24 continuously extends at one end of the multi-directional extension frame 25. When the slotted gear disk 20 rotates counterclockwise, when the sliding column 22 slides inside the transparent curved groove 21, the extension tube 24 gradually moves away from the center position of the slotted gear disk 20 along the groove portion of the multi-directional extension frame 25.

[0033] In one embodiment, for the above-mentioned bonding block 10, the end of the bonding block 10 away from the power connection block 9 is fixedly connected to the conductive tube 11, the conductive tube 11 is slidably connected to the power connection outer tube 12, the power connection outer tube 12 is fixedly connected to the first terminal 18, the end of the power connection block 9 away from the bonding block 10 is fixedly connected to the second terminal 19, and the power monitor body 13 is fixedly connected above the bonding block 10.

[0034] In one embodiment, for the monitoring box 1 described above, a hinge is provided on the side of the monitoring box 1 , and the hinge on the side of the monitoring box 1 is fixedly connected to the box door 2 .

[0035] In one embodiment, for the above-mentioned flame retardant powder spilling box 27, a moisture-proof box 28 for storing flame retardant powder is provided inside the flame retardant powder spilling box 27, and a sprayer for spraying flame retardant is provided on one side of the moisture-proof box 28. The sprayer inside the moisture-proof box 28 passes through the moisture-proof box 28 and is connected to the spraying pipe 34 at the bottom thereof.

[0036] In this embodiment, the sprayer on one side of the moisture-proof box 28 is connected to the bottom spray pipe 34. When the electricity consumption monitor body 13 detects current abnormality and the central gear 8 rotates to trigger a series of actions, the sprayer can accurately transport the flame retardant powder to the spray pipe 34, and the subsequent fan blades 33 blow it away and evenly spread it on the ground, effectively preventing the spread of fire.

[0037] In one embodiment, for the monitoring box 1 described above, a solar panel is provided above the monitoring box 1 , and the solar panel above the monitoring box 1 is used to supply energy to the motor that controls the rotation of the central gear 8 .

[0038] In this embodiment, the solar panels can convert solar energy into electrical energy to power the motor that controls the rotation of the central gear 8, thereby reducing dependence on the traditional power grid, reducing energy consumption and environmental pollution, and meeting the environmental protection requirements of the ecological region.

[0039] In one embodiment, for the monitoring box 1 described above, a display screen for displaying the internal environment of the monitoring box 1 is provided on the surface of the box door 2 .

[0040] In this embodiment, the operator can obtain real-time information about the internal environment of the monitoring box 1, such as current level, equipment operating status, etc., through the display screen without opening the box door 2. This helps to promptly identify potential problems, improve troubleshooting and handling efficiency, and reduce maintenance time and costs.

[0041] In one embodiment, for the monitoring box 1 described above, a track for supporting the sliding of the long strip 17 is provided inside the monitoring box 1 .

[0042] In this embodiment, when the power monitor body 13 detects an abnormal current flow, the central gear 8 rotates, driving the rotating disk 15, connecting rod 16, and other components. The long strip 17 must slide steadily on the track to accurately contact the electric shock tube 4. The track provides stable support and guidance for the long strip 17, ensuring its smooth and accurate sliding process, avoiding erroneous operation or failure to trigger subsequent alarms and circuit breakers due to shaking or deviation.

[0043] In one embodiment, for the monitoring box 1 described above, holes for passing the lines are provided on both sides of the monitoring box 1 , and the extension tube 24 is slidably connected to the multi-directional extension frame 25 .

[0044] In this embodiment, the extension tube 24 is slidably connected to the multi-directional extension frame 25. The position and length of the extension tube 24 can be flexibly adjusted according to actual needs, thereby changing the spray range and coverage area of ​​the flame retardant powder. This can better adapt to actual needs and improve the flame retardant effect in different site conditions and electrical fault situations.

[0045] The working principle of an intelligent electricity safety monitoring device in the present invention is to first connect the line to the surface of the second terminal 19 and the first terminal 18 of the monitoring box 1, and then when the power connection block 9 and the bonding block 10 are in contact, a path can be formed to ensure the normal flow of current, and then the power monitor body 13 can be used to monitor the current size. Since it is set in nature reserves, national parks, etc., electrical fires may cause serious damage to the ecological environment. Even a small-scale fire may affect the living environment of rare animals and plants, so when the current flux is large or causes greater harm, the central gear 8 will be controlled to rotate. The rotation of the central gear 8 will use the second belt 14 to drive the rotating disk 15 to rotate. The rotation of the rotating disk 15 will drive one end of the connecting rod 16 to perform eccentric circular motion. However, the end of the connecting rod 16 away from the rotating disk 15 will drive the long strip 17 to move upward and touch the electric shock tube 4. When the long strip 17 just touches the electric shock tube 4, the central gear 8 will no longer rotate, and the alarm ball 3 will just light up and sound an alarm to prevent the surrounding people from touching it and causing harm. Then, when the central gear 8 rotates, it will engage with the wide tooth plate 35 to drive the fitting block 10 away from the power connection block 9 to form a circuit breaker to prevent fires caused by excessive current. Then, the rotation of the central gear 8 will also use the first belt 7 to drive the second bevel gear 6 to rotate, and the second bevel gear 6 rotates The rotation of the third bevel gear 29 will mesh with the fourth bevel gear 30 to control the rotation of the fan blade 33. The rotation of the fan blade 33 will blow away the flame retardant powder sprayed from the spray pipe 34 to ensure the uniformity of the flame retardant powder on the ground. When the staff performs maintenance, the flame retardant powder will be replenished and the flame retardant powder on the ground will be cleaned to prevent harm to the environment.

[0046] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.

Claims

1. An intelligent monitoring device for power safety, characterized in that: The invention comprises a monitoring box (1), wherein an electric shock tube (4) is fixedly connected to the top of the monitoring box (1), an alarm sphere (3) is fixedly connected to the top of the electric shock tube (4), a strip (17) is provided at the bottom of the electric shock tube (4), the strip (17) is rotatably connected to a connecting rod (16), one end of the connecting rod (16) away from the strip (17) is eccentrically arranged on the surface of a rotating disk (15), the rotating disk (15) is transmission-connected to a central gear (8), the central gear (8) is meshingly connected to a wide tooth plate (35), the wide tooth plate (35) is fixedly connected to a fitting block (10), a side of the fitting block (10) is provided with a power connection block (9) connected to the fitting block to form a closed loop, the central gear (8) is transmission-connected to a second bevel gear (6), The second bevel gear (6) is meshedly connected with the first bevel gear (5), the first bevel gear (5) passes through the monitoring box (1) and is fixedly connected to the meshing pinion (23), the meshing pinion (23) is meshedly connected with the slotted gear plate (20), the surface of the slotted gear plate (20) is provided with a transparent curved groove (21) for sliding the sliding column (22), the sliding column (22) is fixed on the surface of the extension tube (24), the extension tube (24) is rotatably connected with the notch gear (32), the notch gear (32) is transmission-connected with the third bevel gear (29), the third bevel gear (29) is meshedly connected with the fourth bevel gear (30), the fourth bevel gear (30) passes through the flame retardant powder spill box (27) and is fixedly connected to the spraying pipe (34).

2. The intelligent power safety monitoring device according to claim 1, characterized in that: The rotating disk (15) is rotatably connected to the monitoring box (1), the rotating disk (15) is connected to the second belt (14), the end of the second belt (14) away from the rotating disk (15) is connected to the central gear (8), the central gear (8) is connected to the monitoring box (1), the central gear (8) is connected to the first belt (7), the end of the first belt (7) away from the central gear (8) is connected to the second bevel gear (6), the second bevel gear (6) is fixed to the side of the support block inside the monitoring box (1), the notch gear (32) is connected to the third belt (31), the end of the third belt (31) away from the notch gear (32) is connected to the third bevel gear (29), the bottom of the fourth bevel gear (30) passes through the flame retardant powder scattering box (27) and is fixedly connected to the fan blade (33).

3. The intelligent power safety monitoring device according to claim 1, characterized in that: The meshing pinion (23) is rotatably connected to a multi-directional extension frame (25), a plurality of long grooves are provided on the surface of the multi-directional extension frame (25), and slotted racks (26) are provided in the plurality of long grooves on the surface of the multi-directional extension frame (25). A long rod is provided at the center position above the multi-directional extension frame (25), and the long rod at the center position above the multi-directional extension frame (25) is fixedly connected to the bottom of the monitoring box (1). When the bonding block (10) contacts the power connection block (9), a closed circuit is formed. The bonding block (10) is disconnected from the power connection block (9), and when the sliding column (22) slides in the transparent curved groove (21), the slotted gear plate (20) rotates clockwise, and the extension tube (24) continuously extends at one end of the multi-directional extension frame (25). When the slotted gear plate (20) rotates counterclockwise, the sliding column (22) slides inside the transparent curved groove (21), and the extension tube (24) gradually moves away from the center position of the slotted gear plate (20) along the groove portion of the multi-directional extension frame (25).

4. The intelligent power safety monitoring device according to claim 1, characterized in that: One end of the bonding block (10) away from the power connection block (9) is fixedly connected to a conductive tube (11), the conductive tube (11) is slidably connected to an external power connection tube (12), the external power connection tube (12) is fixedly connected to a first terminal (18), one end of the power connection block (9) away from the bonding block (10) is fixedly connected to a second terminal (19), and an electricity monitor body (13) is fixedly connected above the bonding block (10).

5. The intelligent power safety monitoring device according to claim 1, characterized in that: A hinge is provided on the side of the monitoring box (1), and the hinge on the side of the monitoring box (1) is fixedly connected to the box door (2).

6. The intelligent power safety monitoring device according to claim 1, characterized in that: A moisture-proof box (28) for storing the flame-retardant powder is provided inside the flame-retardant powder spilling box (27), and a sprayer for spraying the flame-retardant is provided on one side of the moisture-proof box (28). The sprayer inside the moisture-proof box (28) passes through the moisture-proof box (28) and is connected to a spraying pipe (34) at the bottom thereof.

7. The intelligent power safety monitoring device according to claim 1, characterized in that: A solar panel is provided above the monitoring box (1), and the solar panel above the monitoring box (1) is used to supply energy to the motor that controls the rotation of the central gear (8).

8. The intelligent power safety monitoring device according to claim 5, characterized in that: The surface of the box door (2) is provided with a display screen for displaying the internal environment of the monitoring box (1).

9. The intelligent power safety monitoring device according to claim 1, characterized in that: A track for supporting the sliding of the long strip (17) is provided inside the monitoring box (1).

10. The intelligent power safety monitoring device according to claim 1, characterized in that: Both sides of the monitoring box (1) are provided with holes for passing lines, and the extension tube (24) is slidably connected to the multi-directional extension frame (25).