High-voltage load monitoring device and method

By designing a high-pressure load monitoring device, the mutual cooperation of components can be used to detect and tighten the bolt loosening, and the anti-rust agent is automatically sprayed, the mechanical structural instability and the accuracy and speed of the opening and closing caused by the bolt loosening in the high-pressure load switch is solved, and the effect of timely detection and extending the service life is achieved.

CN120236931AInactive Publication Date: 2025-07-01STATE GRID SHANDONG ELECTRIC POWER CO MARKETING SERVICE CENT (MEASURING CENT)
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Patent Information

Application Number
CN202510378584.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-28
Publication Date
2025-07-01
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Loosening of bolts in high-voltage load switches may lead to mechanical structure instability and component displacement, affecting the accuracy and speed of the opening and closing, and is difficult to detect and deal with in a timely manner.

Method used

A high-pressure load monitoring device is designed to detect and tighten the bolt looseness by the cooperation of components such as clamps, tooth blocks, sector gears, plug rods, cranks, moving blocks, limit rods, top plates, hinges, sliders, ring gears, triggers, contact blocks, etc., and automatically spray anti-rust agent through the cooperation of motors, timers, belts and other components.

Benefits of technology

Timely detection and tightening of bolt looseness is achieved, avoiding the influence of mechanical structure instability and the accuracy and speed of opening and closing. At the same time, the service life of bolts is extended by spraying anti-rust agent.

✦ Generated by Eureka AI based on patent content.

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Abstract

The high-voltage load monitoring device comprises a high-voltage load switch, a plurality of bolts are arranged on the high-voltage load switch, a bottom frame is arranged on the front side of the high-voltage load switch, and clamping plates are attached to the positions, close to the center, of the upper side and the lower side of the bottom frame. Two double-shaft lead screws are arranged at the positions, close to the left sides, of inner cavities of the two clamping plates in a penetrating mode, the two double-shaft lead screws are symmetrically arranged front and back, and a fixing plate is fixedly connected to the top of the upper clamping plate; through mutual cooperation of the component clamping block, the tooth block, the sector gear, the insertion rod, the crank, the moving block, the limiting rod, a top plate, a hinge block, a sliding block, an annular tooth ring, a trigger, a contact block and the like, looseness of a bolt can be detected, when the bolt is loosened under the influence of a high-voltage load switch, the trigger can be started, and therefore follow-up treatment is facilitated.
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Description

Technical Field

[0001] The present invention relates to the technical field of high-voltage load, and specifically to a high-voltage load monitoring device and method. Background Art

[0002] A high-voltage load switch is a key device in the power system for controlling the on-off of load current, applicable to medium and high-voltage distribution networks. The high-voltage load switch has a simple arc extinguishing device, so it can switch on and off a certain load current and overload current. However, it cannot disconnect the short-circuit current, so it is generally used in series with a high-voltage fuse to perform short-circuit protection with the help of the fuse.

[0003] A bolt is a core component in a mechanical operating mechanism to maintain component connection and force. Its loosening or falling off may lead to mechanical structure instability, component displacement, and even chain failures. And the loosening of the bolt may cause displacement of components such as connecting rods and gears in the operating mechanism, affecting the accuracy and speed of opening and closing. For example, incomplete opening may cause the arc to fail to extinguish in time, increasing the risk of equipment damage. Therefore, a device for monitoring bolts in a high-voltage load switch is designed. Summary of the Invention

[0004] To achieve the above object, the present invention provides the following technical solutions:

[0005] A high-voltage load monitoring device includes a high-voltage load switch. A number of bolts are provided on the high-voltage load switch. A chassis is provided on the front side of the high-voltage load switch. Clamping plates are attached to both the upper and lower sides of the chassis near the center. Two double-axis lead screws penetrate through the inner cavities of the two clamping plates near the left side. The two double-axis lead screws are symmetrically arranged front and back. A fixing plate is fixedly connected to the top of the clamping plate located above. Two mounting plates are fixedly connected to the left side of the fixing plate. Limiting frames are fixedly connected to the opposite sides of the two mounting plates. A groove is provided in the inner cavity of the limiting frame. A number of card slots are provided on both the upper and lower sides of the groove. The number of card slots is linearly arranged in sequence from front to back. A moving plate is provided on the side of the inner cavity of the groove close to the fixing plate. Two limiting springs are fixedly connected to both the upper and lower sides of the moving plate, and the two limiting springs are symmetrically arranged left and right. Each two adjacent limiting springs are jointly fixedly connected with a clamping block. The clamping block is in fit with the card slot. Sliding plates are fixedly connected to the opposite sides of the two moving plates. Connecting plates are installed on the corresponding sides of the two sliding plates.

[0006] Preferably, L-shaped connecting rods are fixedly connected to the right sides of the two connecting plates. Storage boxes are fixedly connected to the other ends of the two L-shaped connecting rods. A bottom plate is fixedly connected to the bottom of the storage box. Rectangular openings are provided near the four peripheries of the outer side of the bottom plate. A movable plate is provided in the inner cavity of the bottom plate.

[0007] Preferably, a blanking port is provided near the front side inside the movable plate. Both the front and rear sides of the movable plate penetrate through the adjacent rectangular openings. A translation plate is fixedly connected to the center of the left side of the movable plate. A fixing member is fixedly connected to the left side of the bottom plate near the front side. A spring is fixedly connected between the fixing member and the translation plate.

[0008] Preferably, a motor is fixedly connected near the center of the right side of the connecting plate. A timer is installed on the right side of the motor. The power output shaft of the motor is fixedly connected to a central shaft. An active sheave is fixedly sleeved outside the central shaft. There is a driven sheave on the right side of the active sheave. A belt is sleeved outside the active sheave and the driven sheave.

[0009] Preferably, a rotating rod is fixedly penetrated through the center of the driven sheave. A rotating plate is fixedly sleeved near the bottom end outside the rotating rod. A sleeve plate is fixedly sleeved near the top end outside the rotating rod. The rotating plate is located on the side of the translation plate. The other side of the sleeve plate is fixedly connected to the storage box.

[0010] Preferably, a gear is fixedly connected to the bottom end of the central shaft. Two clamping blocks are attached to the outside of the bolt. Chute grooves are provided at the tops of the two clamping blocks. An annular gear ring is provided at the top of the bolt. A top plate is fixedly connected to the bottom of the annular gear ring. Two sliding blocks are fixedly connected to the bottom of the top plate. Both of the two sliding blocks are slidably connected to the adjacent chute grooves.

[0011] Preferably, a number of tooth blocks are provided on the left side of the clamping block. Sector gears are provided on the left sides of the two clamping blocks. The sector gears are meshed with the adjacent tooth blocks. Linking blocks are fixedly connected to the left sides of the two sector gears. Plug rods are penetrated through the centers of the two sector gears. The top ends of the plug rods are inserted into the bottom of the top plate.

[0012] Preferably, rotating shafts are penetrated through the inner cavities of the two linking blocks. Cranks are sleeved near the upper and lower sides outside the two rotating shafts. The corresponding sides of a number of the cranks are jointly hinged to a moving block. An articulated block is fixedly connected to the bottom of the top plate near the center of the left side. A limiting rod is fixedly connected to the left side of the moving block. The left end of the limiting rod penetrates through the articulated block and is provided with a limiting bolt.

[0013] Preferably, a contact block is fixedly connected to the front side of the clamping block located at the front side. A trigger is fixedly connected to the front side of the top plate. The contact block is located behind the trigger. The trigger is electrically connected to the motor.

[0014] A method for a high-voltage load monitoring device includes the following steps:

[0015] S1: First, the staff rotates two double-axis lead screws, which can drive two clamping plates to move towards each other, so that the two clamping plates are fixed on the chassis. When the clamping plates are fixed, the sliding plate can be pulled to move. When the sliding plate moves, the clamping block can be driven to move. When the clamping block moves and contacts the card slot, the position of the sliding plate can be fixed;

[0016] S2: When the connecting plate moves to the side of the bolt, when the moving block is pulled to move to the left, the sector gear can be driven to swing through the crank. The sector gear swings around the center of the insertion rod. When the sector gear swings, it can mesh with several tooth blocks, thereby driving two clamping blocks to move towards each other. When the two clamping blocks move towards each other, they can be fixed to the bolt;

[0017] S3: The vibration generated during the operation of the high-voltage load switch may cause the bolt to loosen. When the bolt loosens, vibration can be generated to drive the clamping block on the front side to move. When the clamping block on the front side moves, the contact block can be driven to move. When the contact block moves, the trigger can be activated;

[0018] S4: When the trigger is triggered, the motor can be started. When the motor is started, the central shaft can be driven to rotate through the power output shaft. When the central shaft rotates, the driving sheave can be driven to rotate. When the driving sheave rotates, the driven sheave can be driven to rotate through the belt. When the driven sheave rotates, the rotating rod can be driven to rotate. When the rotating rod rotates, the rotating plate can be driven to rotate. When the rotating plate rotates, the translation plate can be driven to move backward. When the translation plate moves backward, the movable plate can be driven to move backward, and the material outlet can be moved below the storage box, so that the rust inhibitor inside the storage box drips onto the top of the bolt;

[0019] S5: When the central shaft rotates, the gear can be driven to rotate at the same time. When the gear rotates, the annular gear ring can be driven to rotate. When the annular gear ring rotates, the top plate can be driven to rotate. When the top plate rotates, two clamping blocks can be driven to rotate at the same time. When the two clamping blocks rotate, the bolt can be driven to rotate, thereby tightening the bolt. The motor can be turned off through the timer.

[0020] Compared with the prior art, the beneficial effects of the present invention are:

[0021] 1. Through the mutual cooperation between components such as clamping blocks, tooth blocks, sector gears, insertion rods, cranks, moving blocks, limit rods, top plates, hinge blocks, sliders, annular gear rings, triggers, and contact blocks, the present invention can detect the loosening of bolts. When the bolts are loosened under the influence of the high-voltage load switch, the trigger can be activated, which is convenient for subsequent processing;

[0022] 2. Through the mutual cooperation among components such as the L-shaped connecting rod, storage box, bottom plate, movable plate, rotating rod, sleeve plate, rotating plate, motor, timer, central shaft, gear, spring, fixing piece, and translation plate, the present invention can achieve the fastening of bolts when they are loose, and at the same time spray an anti-rust agent on the surface of the bolts to avoid affecting the accuracy and speed of opening and closing. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 It is a schematic structural diagram of the present invention;

[0024] Figure 2 It is a schematic structural diagram of the fixing plate of the components of the present invention;

[0025] Figure 3 It is a right view of the fixing plate of the components of the present invention;

[0026] Figure 4 It is a schematic structural diagram of the top plate of the components of the present invention;

[0027] Figure 5 It is a schematic structural diagram of the clamping block of the components of the present invention;

[0028] Figure 6 It is a bottom view of the bottom plate of the components of the present invention;

[0029] Figure 7 It is a schematic structural diagram of the movable plate of the components of the present invention;

[0030] Figure 8 It is a plan view of the limiting frame of the components of the present invention;

[0031] Figure 9 It is a schematic structural diagram of the clamping plate of the components of the present invention;

[0032] Figure 10 It is a plan view of the clamping plate of the components of the present invention;

[0033] Figure 11 It is Figure 5 an enlarged view of part A in

[0034] Figure 12 It is Figure 6 an enlarged view of part B in

[0035] Figure 13 It is Figure 8 an enlarged view of part C in.

[0036] Reference numerals in the figure: 1, high-voltage load switch; 2, clamping plate; 3, fixing plate; 4, mounting plate; 5, limiting frame; 6, sliding plate; 7, connecting plate; 8, L-shaped connecting rod; 9, storage box; 10, annular gear ring; 11, top plate; 12, hinge block; 13, trigger; 14, slider; 15, clamping block; 16, sector gear; 17, crank; 18, moving block; 19, limiting rod; 20, linkage block; 21, rotating rod; 22, inserting rod; 23, contact block; 24, motor; 25, timer; 26, belt; 27, sleeve plate; 28, driving sheave; 29, central shaft; 30, gear; 31, driven sheave; 32, bottom plate; 33, movable plate; 34, fixing member; 35, spring; 36, rotating plate; 37, translating plate; 38, double-shaft screw rod; 39, moving plate; 40, clamping block; 41, limiting spring. Detailed implementation manners

[0037] Please refer to Figures 1-13 , the present invention provides a technical solution:

[0038] A high-voltage load monitoring device includes a high-voltage load switch 1. A number of bolts are provided on the high-voltage load switch 1. A chassis is provided on the front side of the high-voltage load switch 1. Clamping plates 2 are respectively attached to the upper and lower sides of the chassis near the center. Two double-shaft screw rods 38 penetrate through the inner cavities of the two clamping plates 2 near the left side. The two double-shaft screw rods 38 are symmetrically arranged front and back. A fixing plate 3 is fixedly connected to the top of the clamping plate 2 located above. Two mounting plates 4 are fixedly connected to the left side of the fixing plate 3. Limiting frames 5 are fixedly connected to the opposite sides of the two mounting plates 4. Grooves are provided in the inner cavities of the limiting frames 5. A number of card slots are provided on the upper and lower sides of the grooves. The number of card slots are linearly arranged in sequence from front to back. A moving plate 39 is provided on the side of the inner cavity of the groove close to the fixing plate 3. Two limiting springs 41 are fixedly connected to the upper and lower sides of the moving plate 39, and the two limiting springs 41 are symmetrically arranged left and right. Each two adjacent limiting springs 41 are jointly fixedly connected to a clamping block 40. The clamping block 40 is in contact with the card slot. Sliding plates 6 are fixedly connected to the opposite sides of the two moving plates 39. Connecting plates 7 are installed on the corresponding sides of the two sliding plates 6. L-shaped connecting rods 8 are fixedly connected to the right sides of the two connecting plates 7. Storage boxes 9 are fixedly connected to the other ends of the two L-shaped connecting rods 8. A bottom plate 32 is fixedly connected to the bottom of the storage box 9. Rectangular openings are provided near the peripheries of the outer sides of the bottom plate 32. A movable plate 33 is provided in the inner cavity of the bottom plate 32. A blanking opening is provided in the inner cavity of the movable plate 33 near the front side. The front and back sides of the movable plate 33 penetrate through the adjacent rectangular openings. A translating plate 37 is fixedly connected to the center of the left side of the movable plate 33. A fixing member 34 is fixedly connected to the left side of the bottom plate 32 near the front side. A spring 35 is jointly fixedly connected between the fixing member 34 and the translating plate 37.

[0039] On the right side of the connecting plate 7 near the center, a motor 24 is fixedly connected. On the right side of the motor 24, a timer 25 is installed. The power output shaft of the motor 24 is fixedly connected with a central shaft 29. An active sheave 28 is fixedly sleeved outside the central shaft 29. There is a driven sheave 31 on the right side of the active sheave 28. A belt 26 is jointly sleeved outside the active sheave 28 and the driven sheave 31. A rotating rod 21 is fixedly penetrated through the center of the driven sheave 31. A rotating plate 36 is fixedly sleeved near the bottom outside the rotating rod 21. A sleeve plate 27 is fixedly sleeved near the top outside the rotating rod 21. The rotating plate 36 is located on the side of the translation plate 37. The other side of the sleeve plate 27 is fixedly connected to the storage box 9. The bottom end of the central shaft 29 is fixedly connected with a gear 30. Two clamping blocks 15 are attached to the outside of the bolt. Chute grooves are opened at the tops of the two clamping blocks 15. An annular tooth ring 10 is provided at the top of the bolt. A top plate 11 is fixedly connected to the bottom of the annular tooth ring 10. Two sliders 14 are fixedly connected to the bottom of the top plate 11. Both of the two sliders 14 are slidably connected to the adjacent chute grooves. A number of tooth blocks are arranged on the left side of the clamping block 15. Sector gears 16 are arranged on the left sides of the two clamping blocks 15. The sector gears 16 are engaged with the adjacent tooth blocks. Linkage blocks 20 are fixedly connected to the left sides of the two sector gears 16. Plug rods 22 are penetrated through the centers of the two sector gears 16. The top ends of the plug rods 22 are inserted into the bottom of the top plate 11. Rotating shafts are penetrated through the inner cavities of the two linkage blocks 20. Cranks 17 are sleeved near the upper and lower sides outside the two rotating shafts. The opposite sides of a number of the cranks 17 are jointly hinged with a moving block 18. An articulated block 12 is fixedly connected to the bottom of the top plate 11 near the center of the left side. A limiting rod 19 is fixedly connected to the left side of the moving block 18. The left end of the limiting rod 19 penetrates through the articulated block 12 and is provided with a limiting bolt. A contact block 23 is fixedly connected to the front side of the front clamping block 15. A trigger 13 is fixedly connected to the front side of the top plate 11. The contact block 23 is located at the rear side of the trigger 13. The trigger 13 is electrically connected to the motor 24.

[0040] A method for a high-voltage load monitoring device includes the following steps:

[0041] S1: First, the staff rotates two double-axis lead screws 38, which can drive the two clamping plates 2 to move towards each other, so that the two clamping plates 2 are fixed on the chassis. When the clamping plates 2 are fixed, the sliding plate 6 can be pulled to move. When the sliding plate 6 moves, the block 40 can be driven to move. When the block 40 moves into contact with the card slot, the position of the sliding plate 6 can be fixed;

[0042] S2: When the connecting plate 7 moves next to the bolt, when the moving block 18 is pulled to move to the left, the sector gear 16 can be driven to swing through the crank 17. The sector gear 16 swings around the center of the plug rod 22. When the sector gear 16 swings, it can be engaged with a number of tooth blocks, thereby driving the two clamping blocks 15 to move towards each other. When the two clamping blocks 15 move towards each other, they can be fixed to the bolt;

[0043] S3: The vibration generated during the operation of the high-voltage load switch 1 may cause the bolts to loosen. When the bolts loosen, vibrations can be generated, driving the clamp 15 on the front side to move. When the clamp 15 on the front side moves, it can drive the contact block 23 to move. When the contact block 23 moves, the trigger 13 can be activated;

[0044] S4: When the trigger 13 is triggered, the motor 24 can be activated. When the motor 24 is activated, it can drive the central shaft 29 to rotate through the power output shaft. When the central shaft 29 rotates, it can drive the driving sheave 28 to rotate. When the driving sheave 28 rotates, it can drive the driven sheave 31 to rotate through the belt 26. When the driven sheave 31 rotates, it can drive the rotating rod 21 to rotate. When the rotating rod 21 rotates, it can drive the rotating plate 36 to rotate. When the rotating plate 36 rotates, it can drive the translation plate 37 to move backward. When the translation plate 37 moves backward, it can drive the movable plate 33 to move backward and move the material discharge port below the storage box 9, so that the rust inhibitor inside the storage box 9 drips onto the top of the bolt;

[0045] S5: When the central shaft 29 rotates, it can simultaneously drive the gear 30 to rotate. When the gear 30 rotates, it can drive the annular gear ring 10 to rotate. When the annular gear ring 10 rotates, it can drive the top plate 11 to rotate. When the top plate 11 rotates, it can simultaneously drive the two clamps 15 to rotate. When the two clamps 15 rotate, they can drive the bolt to rotate, thus tightening the bolt. The motor 24 can be turned off through the timer 25.

[0046] Working principle: First, the staff rotates two double-axis lead screws 38, which can drive two clamping plates 2 to move towards each other, so that the two clamping plates 2 are fixed on the chassis. When the clamping plates 2 are fixed, the sliding plate 6 can be pulled to move. When the sliding plate 6 moves, the clamping block 40 can be driven to move. When the clamping block 40 moves and contacts the card slot, the position of the sliding plate 6 can be fixed. When the connecting plate 7 moves to the side of the bolt, when the moving block 18 is pulled to move to the left, the sector gear 16 can be driven to swing by the crank 17. The sector gear 16 swings around the center of the inserting rod 22. When the sector gear 16 swings, it can mesh with several tooth blocks, so as to drive two clamping blocks 15 to move towards each other. When the two clamping blocks 15 move towards each other, they can be fixed to the bolt. The vibration generated by the operation of the high-voltage load switch 1 may cause the bolt to loosen. When the bolt loosens, vibration can be generated to drive the clamping block 15 on the front side to move. When the clamping block 15 on the front side moves, the contact block 23 can be driven to move. When the contact block 23 moves, the trigger 13 can be started. When the trigger 13 is triggered, the motor 24 can be started. When the motor 24 is started, the central shaft 29 can be driven to rotate through the power output shaft. When the central shaft 29 rotates, the driving pulley 28 can be driven to rotate. When the driving pulley 28 rotates, the driven pulley 31 can be driven to rotate through the belt 26. When the driven pulley 31 rotates, the rotating rod 21 can be driven to rotate. When the rotating rod 21 rotates, the rotating plate 36 can be driven to rotate. When the rotating plate 36 rotates, the translation plate 37 can be driven to move backward, and the material discharging port can be moved below the storage box 9, so that the rust inhibitor in the storage box 9 drips onto the top of the bolt. When the central shaft 29 rotates, the gear 30 can be driven to rotate at the same time. When the gear 30 rotates, the annular gear ring 10 can be driven to rotate. When the annular gear ring 10 rotates, the top plate 11 can be driven to rotate. When the top plate 11 rotates, the two clamping blocks 15 can be driven to rotate at the same time. When the two clamping blocks 15 rotate, the bolt can be driven to rotate, so as to tighten the bolt. The motor 24 can be turned off through the timer 25.

Claims

1. A high-voltage load monitoring device, comprising a high-voltage load switch (1), characterized in that: A plurality of bolts are arranged on the high-voltage load switch (1), a base frame is arranged on the front side of the high-voltage load switch (1), clamps (2) are fitted near the center on both upper and lower sides of the base frame, two double-axis screw rods (38) are penetrated near the left side of the inner cavity of the two clamps (2), the two double-axis screw rods (38) are arranged symmetrically front and back, a fixing plate (3) is fixedly connected to the top of the clamp (2) located at the top, two mounting plates (4) are fixedly connected to the left side of the fixing plate (3), and the two mounting plates (4) are fixedly connected to the opposite sides of the two mounting plates (4) with a limit frame (5), and the inner cavity of the limit frame (5) is provided with a groove, and the groove A plurality of slots are provided on both upper and lower sides of the groove, and the slots are linearly arranged from front to back. A movable plate (39) is provided on the inner cavity of the groove near the fixed plate (3). Two limit springs (41) are fixedly connected to both upper and lower sides of the movable plate (39), and the two limit springs (41) are symmetrically arranged. Every two adjacent limit springs (41) are fixedly connected to a block (40), and the block (40) fits the slot. The two movable plates (39) are fixedly connected to the opposite sides with a sliding plate (6), and the corresponding sides of the two sliding plates (6) are installed with a connecting plate (7).

2. A high voltage load monitoring device according to claim 1, characterized in that: The right sides of the two connecting plates (7) are fixedly connected to an L-shaped connecting rod (8), the other ends of the two L-shaped connecting rods (8) are fixedly connected to a storage box (9), the bottom of the storage box (9) is fixedly connected to a bottom plate (32), the outer side of the bottom plate (32) is provided with rectangular openings near the periphery, and the inner cavity of the bottom plate (32) is provided with a movable plate (33).

3. A high voltage load monitoring device according to claim 2, characterized in that: A feeding opening is provided in the inner cavity of the movable plate (33) near the front side, and adjacent rectangular openings are passed through the front and rear sides of the movable plate (33). A translation plate (37) is fixedly connected to the center of the left side of the movable plate (33), and a fixing member (34) is fixedly connected to the left side of the bottom plate (32) near the front side, and a spring (35) is fixedly connected between the fixing member (34) and the translation plate (37).

4. A high voltage load monitoring device according to claim 3, characterized in that: A motor (24) is fixedly connected to the right side of the connecting plate (7) near the center, a timer (25) is installed on the right side of the motor (24), a power output shaft of the motor (24) is fixedly connected to a central shaft (29), a driving groove wheel (28) is fixedly sleeved on the outer side of the central shaft (29), a driven groove wheel (31) is arranged on the right side of the driving groove wheel (28), and a belt (26) is sleeved on the outer sides of the driving groove wheel (28) and the driven groove wheel (31).

5. A high voltage load monitoring device according to claim 4, characterized in that: A rotating rod (21) is fixedly provided at the center of the driven groove wheel (31) and penetrates through the center of the circle; a rotating plate (36) is fixedly sleeved on the outer side of the rotating rod (21) near the bottom end; a sleeve plate (27) is fixedly sleeved on the outer side of the rotating rod (21) near the top end; the rotating plate (36) is located at the side of the translation plate (37); and the other side of the sleeve plate (27) is fixedly connected to the storage box (9).

6. A high voltage load monitoring device according to claim 5, characterized in that: The bottom end of the central shaft (29) is fixedly connected with a gear (30), the outer side of the bolt is fitted with two clamping blocks (15), the tops of the two clamping blocks (15) are provided with sliding grooves, the top of the bolt is provided with an annular gear ring (10), the bottom of the annular gear ring (10) is fixedly connected with a top plate (11), the bottom of the top plate (11) is fixedly connected with two sliding blocks (14), and the two sliding blocks (14) are slidably connected to adjacent sliding grooves.

7. A high voltage load monitoring device according to claim 6, characterized in that: A plurality of tooth blocks are arranged on the left side of the clamping block (15), and a sector gear (16) is arranged on the left side of the two clamping blocks (15). The sector gear (16) is meshed with the adjacent tooth blocks, and a linkage block (20) is fixedly connected to the left side of the two sector gears (16). An insertion rod (22) is penetrated at the center of the two sector gears (16), and the top end of the insertion rod (22) is inserted into the bottom of the top plate (11).

8. A high voltage load monitoring device according to claim 7, characterized in that: A rotating shaft is passed through the inner cavity of the two linkage blocks (20), and cranks (17) are sleeved on the outer sides of the two rotating shafts near the upper and lower sides. A moving block (18) is hingedly connected to the corresponding side of a plurality of cranks (17). A hinge block (12) is fixedly connected to the bottom of the top plate (11) near the left center. A limiting rod (19) is fixedly connected to the left side of the moving block (18). The left end of the limiting rod (19) passes through the hinge block (12) and is installed with a limiting bolt.

9. A high voltage load monitoring device according to claim 8, characterized in that: The front side of the clamping block (15) located at the front side is fixedly connected to a contact block (23), the front side of the top plate (11) is fixedly connected to a trigger (13), the contact block (23) is located at the rear side of the trigger (13), and the trigger (13) is electrically connected to a motor (24).

10. A method for a high voltage load monitoring device according to any one of claims 1 to 9, characterized in that: The following steps are involved: S1: First, the staff rotates the two double-axis screw rods (38) to drive the two clamping plates (2) to move in opposite directions, so that the two clamping plates (2) are fixed on the base frame. When the clamping plates (2) are fixed, the sliding plate (6) can be pulled to move. When the sliding plate (6) moves, the card block (40) can be driven to move. When the card block (40) moves and contacts the card slot, the position of the sliding plate (6) can be fixed. S2: When the connecting plate (7) moves to the side of the bolt, the moving block (18) can be pulled to move to the left, and the fan gear (16) can be driven to swing by the crank (17), and the fan gear (16) swings along the center of the plug rod (22). When the fan gear (16) swings, it can mesh with a plurality of tooth blocks, thereby driving the two clamping blocks (15) to move in opposite directions. When the two clamping blocks (15) move in opposite directions, they can be fixed with the bolt; S3: The vibration generated by the operation of the high-voltage load switch (1) may cause the bolts to loosen. When the bolts are loosened, vibrations may be generated, thereby driving the clamping block (15) located at the front side to move. When the clamping block (15) located at the front side moves, the contact block (23) may be driven to move. When the contact block (23) moves, the trigger (13) may be activated. S4: When the trigger (13) is triggered, the motor (24) can be started. When the motor (24) is started, the central shaft (29) can be driven to rotate through the power output shaft. When the central shaft (29) rotates, the active groove wheel (28) can be driven to rotate. When the active groove wheel (28) rotates, the driven groove wheel (31) can be driven to rotate through the belt (26). When the driven groove wheel (31) rotates, the rotating rod (21) can be driven to rotate. When the rotating rod (21) rotates, the rotating plate (36) can be driven to rotate. When the rotating plate (36) rotates, the translation plate (37) can be driven to move backward. When the translation plate (37) moves backward, the movable plate (33) can be driven to move backward, and the unloading port can be moved to the bottom of the storage box (9), so that the rust inhibitor inside the storage box (9) drips onto the top of the bolt; S5: When the central shaft (29) rotates, the gear (30) can be driven to rotate simultaneously. When the gear (30) rotates, the annular gear ring (10) can be driven to rotate. When the annular gear ring (10) rotates, the top plate (11) can be driven to rotate. When the top plate (11) rotates, the two clamping blocks (15) can be driven to rotate simultaneously. When the two clamping blocks (15) rotate, the bolts can be driven to rotate, thereby tightening the bolts. The motor (24) can be turned off by the timer (25).