Power equipment monitoring device based on voiceprint diagnosis

By designing a combination of a voiceprint diagnostic monitoring structure and a supporting and controlling structure, and using an electric motor and a hydraulic telescopic rod to achieve multi-angle adjustment and position conversion of the power equipment, the problem of the existing device being fixed in a single position is solved, and multi-position voiceprint diagnosis with automated and remote monitoring is realized.

CN223318815UActive Publication Date: 2025-09-09GUANGZHOU ZHUJIANG LNG POWER GENERATION CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422716169.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-08
Publication Date
2025-09-09
Estimated Expiration
2034-11-08

AI Technical Summary

Technical Problem

Existing power equipment monitoring devices based on voiceprint diagnosis have a single fixed position method, making it difficult to achieve automated adjustment and control, which affects monitoring efficiency.

Method used

A power equipment monitoring device was designed, which includes a soundprint diagnostic monitoring structure and a support and control structure. The multi-angle adjustment and position conversion of the soundprint diagnostic monitoring structure are achieved through the combination of a motor-driven gear disc and a hydraulic telescopic rod. Remote monitoring is also possible in combination with a wireless controller.

Benefits of technology

It realizes multi-location automated monitoring of power equipment, improves the flexibility and efficiency of monitoring, and supports remote control and multi-location voiceprint monitoring.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223318815U_ABST
    Figure CN223318815U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of power equipment monitoring, in particular to a power equipment monitoring device based on voiceprint diagnosis, which comprises a voiceprint diagnosis monitoring structure and a support regulation and control structure, and is characterized in that the upper end of the support regulation and control structure is rotatably and adjustably connected with the voiceprint diagnosis monitoring structure; the voiceprint diagnosis monitoring structure comprises a voiceprint diagnosis monitoring part, a butt-joint bearing ring block and a rotating fluted disc, the lower end of the voiceprint diagnosis monitoring part is fixedly connected with the butt-joint bearing ring block, the lower end of the butt-joint bearing ring block is rotationally connected with the rotating fluted disc, and the inner side of the rotating fluted disc is in meshed connection with a first connecting fluted disc; the first connecting fluted disc is fixedly connected with an attaching guide block, the lower end of the first connecting fluted disc is fixedly connected with a rotating rod, the lower end of the rotating rod is fixedly connected with a second connecting fluted disc, the lower end of the second connecting fluted disc is rotationally connected with a bearing protection seat, and the lower end of the bearing protection seat is fixedly connected with a supporting ring seat. Through the arrangement of the structure, the purpose of multi-position voiceprint diagnosis and monitoring is achieved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of power equipment monitoring, and in particular to a power equipment monitoring device based on voiceprint diagnosis. Background Art

[0002] As a core component of the power grid, power transformers have a significant impact on the safe and stable operation of large-scale power grids. To ensure the safe and stable operation of transformers, many non-stop power detection technologies have been applied to transformers.

[0003] Among them, the transformer voiceprint detection technology has wide application value in actual implementation scenarios such as online monitoring of transformers and non-stop power detection, because the sensing device does not need to generate electromagnetic coupling with the transformer and can detect and diagnose the overall mechanical faults of the transformer.

[0004] During the operation of the transformer, the core, winding and other structures will vibrate and transmit mechanical waves. The generated vibration and audible sound signals contain a large amount of equipment status information.

[0005] At present, the power equipment monitoring devices based on voiceprint diagnosis on the market have the problem of a single fixed position when in use. During monitoring, remote control is often required to adjust the monitoring position. The existing equipment is not convenient for automated adjustment and control. Therefore, a device is needed to improve the above problem. Summary of the Invention

[0006] In response to the problems in the prior art, the present invention provides an electric power equipment monitoring device based on voiceprint diagnosis.

[0007] The technical solution adopted by the present invention to solve its technical problems is: a power equipment monitoring device based on soundprint diagnosis, including a soundprint diagnosis monitoring structure and a support and control structure, the upper end of the support and control structure is rotatably connected to the soundprint diagnosis monitoring structure, the soundprint diagnosis monitoring structure includes a soundprint diagnosis monitoring component, a docking bearing ring block and a rotating gear disc, the lower end of the soundprint diagnosis monitoring component is fixedly connected to the docking bearing ring block, the lower end of the docking bearing ring block is rotatably connected to the rotating gear disc, the inner side of the rotating gear disc is meshed with the first connecting gear disc, the first connecting gear disc is fixedly connected to a fitting guide block, the lower end of the first connecting gear disc is fixedly connected to a rotating rod, the lower end of the rotating rod is fixedly connected to a second connecting gear disc, the lower end of the second connecting gear disc is rotatably connected to a bearing protection seat, the lower end of the bearing protection seat is fixedly connected to a support ring seat, an electric motor is installed in the center of the support ring seat, the motor is drivably connected to a drive control gear disc, the drive control gear disc is meshed with the second connecting gear disc, and the inner side of the first connecting gear disc is meshed with the soundprint diagnosis monitoring component.

[0008] Specifically, the voiceprint diagnosis and monitoring component includes a monitoring controller, a conductive cover, an adapter guide shaft, a rotation control gear disc, a top disk block, a voiceprint monitoring sensor and a wireless controller. The upper end of the rotation control gear disc is fixedly connected to the adapter guide shaft, the upper end of the adapter guide shaft is fixedly connected to the top disk block, the upper end of the top disk block is fixedly connected to the monitoring controller, one side of the monitoring controller is fixedly connected to the conductive cover, and the voiceprint monitoring sensor and the wireless controller are installed on the side of the monitoring controller away from the conductive cover. The monitoring controller, the voiceprint monitoring sensor and the wireless controller are electrically connected as a whole.

[0009] Specifically, the support and control structure includes a support guide block, a bottom guide frame, a side support block and a positioning leg. The side end of the bottom guide frame is fixedly connected to the side support block, the side end of the side support block is fixedly connected to the positioning leg, and the upper end of the bottom guide frame is fixedly connected to the support guide block.

[0010] Specifically, the support and control structure includes a limit hinge rod, a sheath seat, a matching hinge rod, an electro-hydraulic telescopic rod, a matching hinge guide seat and a support and protection side block. The upper end center of the support guide block is fixedly connected to the limit hinge rod, and the side end of the limit hinge rod is hinged to the sheath seat. The sheath seat is fixedly connected with a matching hinge rod on the side away from the limit hinge rod. An electro-hydraulic telescopic rod is hinged on the matching hinge rod, and the lower end of the electro-hydraulic telescopic rod is fixedly connected to the matching hinge guide seat. The matching hinge seat is hinged to the support and protection side block. Through the structural setting of the support and control structure, the upper end of the sheath seat in the support and control structure is fixed to the soundprint diagnosis and monitoring structure. When the electro-hydraulic telescopic rod is telescopically adjusted, the sheath seat can be pushed to rotate on the support guide block and the limit hinge rod, thereby changing the inclination angle of the soundprint diagnosis and monitoring structure, adjusting the three-dimensional inclination position, and performing automated monitoring of more positions.

[0011] Specifically, the upper end of the sleeve seat is fixedly connected to the support ring seat, and the upper end of the motor is connected to the second connecting gear plate through the driving control gear plate. The second connecting gear plate drives the fitting guide block, the first connecting gear plate, and the rotating rod to rotate and connect through the rotating rod.

[0012] Specifically, the first connecting gear is rotatably connected between the rotating gear and the rotating control gear. The rotating control gear drives the monitoring controller, the conductive cover, the adapter guide shaft, the top plate block, the voiceprint monitoring sensor, and the wireless controller to rotate by engaging with the first connecting gear.

[0013] Specifically, the rotating gear disc rotates in opposite directions to the rotating control gear disc, the rotating gear disc rotates at the lower end of the docking bearing ring block, and the docking bearing ring block is fixedly connected to the lower end of the top plate block.

[0014] Specifically, the wireless controller is electrically connected to the motor and the electro-hydraulic telescopic rod. The electro-hydraulic telescopic rod drives the matching hinge rod and the sheath seat to rotate and adjust on the limit hinge rod through extension and contraction, thereby changing the overall inclination of the upper end voiceprint diagnostic monitoring structure.

[0015] Specifically, the bottom guide frame is fixed at the bottom through side support blocks and positioning legs, and the support guide block is hingedly arranged with a matching hinged guide seat through a supporting and protecting side block.

[0016] Specifically, the monitoring controller and the voiceprint monitoring sensor are electrically connected, and the conductive cover is connected to the monitoring controller and the voiceprint monitoring sensor to perform voiceprint diagnosis and monitoring work.

[0017] Beneficial effects of the present invention:

[0018] 1. The present invention can adjust the rotation angle through the structural setting of the voiceprint diagnosis and monitoring structure. The support ring seat in the voiceprint diagnosis and monitoring structure provides bottom support, and the bearing protection seat is rotatably connected with a fitting guide block, a first connecting gear plate, a rotating rod, and a second connecting gear plate. The motor can drive the control gear plate to rotate, thereby driving the rotating rod and the second connecting gear plate to follow the rotation. At this time, the first connecting gear plate follows the rotation, and the first connecting gear plate is engaged with the rotating gear plate and the rotating control gear plate, which can drive the rotating control gear plate to rotate, thereby realizing the rotation control work of the upper end monitoring controller, the conductive cover, the adapter guide shaft, the top plate block, the voiceprint monitoring sensor, and the wireless controller. At the same time, the rotating gear plate rotates at the lower end of the docking bearing ring block to cooperate in supporting and protecting work. At this time, the conductive cover, the monitoring controller, and the voiceprint monitoring sensor can all be adjusted to realize multi-position voiceprint monitoring.

[0019] Second, the present invention supports the structural setting of the control structure, and the upper end of the sheath seat in the control structure is fixed to the soundprint diagnosis and monitoring structure. When the electric-controlled hydraulic telescopic rod is telescopically adjusted, the sheath seat can be pushed to rotate on the support guide block and the limit hinge rod, thereby changing the inclination angle of the soundprint diagnosis and monitoring structure, adjusting the three-dimensional inclination position, and performing automated monitoring work in more positions. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] The present invention will be further described below with reference to the accompanying drawings and examples.

[0021] Figure 1 This is a schematic diagram of the three-dimensional structure of the main body of the present invention from the front perspective;

[0022] Figure 2 This is a schematic diagram of the three-dimensional structure of the main body of the present invention from a side perspective;

[0023] Figure 3 This is a schematic diagram of the three-dimensional structure of the main body of the present invention from a rear perspective;

[0024] Figure 4 This is a schematic diagram of the front perspective three-dimensional structure of the voiceprint diagnosis and monitoring structure of the present invention;

[0025] Figure 5 This is a disassembled diagram of the voiceprint diagnosis and monitoring structure of the present invention;

[0026] Figure 6 This is a schematic diagram of the front perspective three-dimensional structure of the voiceprint diagnosis and monitoring component of the present invention;

[0027] Figure 7 This is a schematic diagram of the three-dimensional structure of the support and control structure of the present invention from a front perspective;

[0028] Figure 8 It is a schematic diagram of the three-dimensional structure of the supporting and regulating structure in the present invention from a side perspective.

[0029] In the figure: 1-acoustic diagnosis and monitoring structure, 2-support and control structure, 3-acoustic diagnosis and monitoring component, 4-docking bearing ring block, 5-rotating gear disc, 6-fitting guide block, 7-first connecting gear disc, 8-rotating rod, 9-second connecting gear disc, 10-bearing protection seat, 11-support ring seat, 12-motor, 13-drive control gear disc, 14-monitoring controller, 15-conduction cover, 16-adaptive guide shaft, 17-rotating control gear disc, 18-top plate block, 19-acoustic monitoring sensor, 20-wireless controller, 21-support guide block, 22-bottom guide frame, 23-side support block, 24-positioning tripod, 25-limiting articulated rod, 26-sheath seat, 27-matching hinge rod, 28-electrically controlled hydraulic telescopic rod, 29-matching articulated guide seat, 30-support and protection side block. DETAILED DESCRIPTION

[0030] In order to enable those skilled in the art to better understand the present invention, the following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments in the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts should fall within the scope of protection of this application.

[0031] The present invention will be further described below with reference to the accompanying drawings.

[0032] Example

[0033] like Figure 1-8As shown, an electric power equipment monitoring device based on voiceprint diagnosis of the present invention comprises a voiceprint diagnosis monitoring structure 1 and a supporting and regulating structure 2. The upper end of the supporting and regulating structure 2 is rotatably connected to the voiceprint diagnosis monitoring structure 1. The voiceprint diagnosis monitoring structure 1 comprises a voiceprint diagnosis monitoring component 3, a docking bearing ring block 4 and a rotating gear disc 5. The lower end of the voiceprint diagnosis monitoring component 3 is fixedly connected to the docking bearing ring block 4. The lower end of the docking bearing ring block 4 is rotatably connected to the rotating gear disc 5. The inner side of the rotating gear disc 5 is meshed with the first connecting gear disc 7. The first connecting gear disc 7 is fixedly connected to a fitting guide block 6. The lower end of the first connecting gear disc 7 is fixedly connected to the first connecting gear disc 7. It is fixedly connected with a rotating rod 8, and the lower end of the rotating rod 8 is fixedly connected with a second connecting toothed disc 9. The lower end of the second connecting toothed disc 9 is rotatably connected to the bearing protection seat 10. The lower end of the bearing protection seat 10 is fixedly connected with a support ring seat 11. The center of the support ring seat 11 is equipped with a motor 12. The motor 12 is driven by a drive control toothed disc 13. The drive control toothed disc 13 is meshed with the second connecting toothed disc 9. The inner side of the first connecting toothed disc 7 is meshed with the soundprint diagnosis and monitoring component 3. The support and control structure 2 is positioned and fixed at the bottom through the side support block 23 and the positioning tripod 24, and the sound is collected through the conductive cover 15. After that, it is transmitted to the inside of the voiceprint monitoring sensor 19 and the monitoring controller 14, which can perform monitoring work to judge the normal use of the power equipment, and the wireless controller 20 is connected to the external remote controller to perform remote control work. When the rotation adjustment of the voiceprint diagnosis monitoring structure 1 is required, the motor 12 is driven at this time to drive the drive control gear disc 13 to rotate, and the drive control gear disc 13 is engaged with the second connecting gear disc 9, which can drive the second connecting gear disc 9 and the rotating rod 8 to rotate on the bearing protection seat 10. At the same time, the rotating rod 8 is connected to the fitting guide block 6 and the first connecting gear disc 7. Fixed connection, at this time the first connecting gear disc 7 rotates, the first connecting gear disc 7 is engaged with the rotating gear disc 5 and the rotating control gear disc 17, and can drive the rotating gear disc 5 and the rotating control gear disc 17 to rotate in the opposite direction, the rotating gear disc 5 rotates at the lower end of the docking bearing ring block 4, and the upper docking bearing ring block 4 does not rotate with it. When the rotating control gear disc 17 rotates, it can drive the adapting guide shaft 16 and the top plate block 18 to rotate, so that the monitoring controller 14, the conductive cover 15, the voiceprint monitoring sensor 19, and the wireless controller 20 can be rotated and adjusted to realize the position conversion work and help the voiceprint monitoring work.

[0034] The voiceprint diagnosis and monitoring component 3 includes a monitoring controller 14, a conductive cover 15, an adapting guide shaft 16, a rotation control gear disc 17, a top disk block 18, a voiceprint monitoring sensor 19 and a wireless controller 20. The upper end of the rotation control gear disc 17 is fixedly connected to the adapting guide shaft 16, the upper end of the adapting guide shaft 16 is fixedly connected to the top disk block 18, the upper end of the top disk block 18 is fixedly connected to the monitoring controller 14, one side of the monitoring controller 14 is fixedly connected to the conductive cover 15, and the side of the monitoring controller 14 away from the conductive cover 15 is installed with a voiceprint monitoring sensor 19 and a wireless controller 20. The monitoring controller 14, the voiceprint monitoring sensor 19 and the wireless controller 20 are electrically connected as a whole. The structural setting of the voiceprint diagnosis and monitoring structure 1 can adjust the rotation angle. The support ring seat 11 in the voiceprint diagnosis and monitoring structure 1 provides bottom support, and the bearing is kept The guard seat 10 is rotatably connected with a fitting guide block 6, a first connecting gear disc 7, a rotating rod 8, and a second connecting gear disc 9. The motor 12 can drive the driving control gear disc 13 to rotate, thereby driving the rotating rod 8 and the second connecting gear disc 9 to rotate. At this time, the first connecting gear disc 7 rotates accordingly. The first connecting gear disc 7 is engaged with the rotating gear disc 5 and the rotating control gear disc 17, and can drive the rotating control gear disc 17 to rotate, thereby realizing the rotation control work of the upper end monitoring controller 14, the conductive cover 15, the adapting guide shaft 16, the top plate block 18, the voiceprint monitoring sensor 19, and the wireless controller 20. At the same time, the rotating gear disc 5 rotates at the lower end of the docking bearing ring block 4 to cooperate in supporting and protecting work. At this time, the conductive cover 15, the monitoring controller 14, and the voiceprint monitoring sensor 19 can all be adjusted to realize multi-position voiceprint monitoring.

[0035] The support and control structure 2 includes a support guide block 21, a bottom guide frame 22, a side support block 23 and a positioning leg 24. The side end of the bottom guide frame 22 is fixedly connected to the side support block 23, the side end of the side support block 23 is fixedly connected to the positioning leg 24, and the upper end of the bottom guide frame 22 is fixedly connected to the support guide block 21.

[0036] The support and control structure 2 includes a limit hinge rod 25, a sheath seat 26, a matching hinge rod 27, an electric-controlled hydraulic telescopic rod 28, a matching hinge guide seat 29 and a support and protection side block 30. The upper end center of the support guide block 21 is fixedly connected to the limit hinge rod 25, the side end of the limit hinge rod 25 is hinged to the sheath seat 26, the side of the sheath seat 26 away from the limit hinge rod 25 is fixedly connected to the matching hinge rod 27, the matching hinge rod 27 is hinged with an electric-controlled hydraulic telescopic rod 28, the lower end of the electric-controlled hydraulic telescopic rod 28 is fixedly connected to the matching hinge guide seat 29, and the matching hinge guide seat 29 is fixedly connected to the support and protection side block 30. The block 30 is hinged. When the angle of the voiceprint diagnosis and monitoring structure 1 needs to be adjusted, the electrically controlled hydraulic telescopic rod 28 is telescopically adjusted. The electrically controlled hydraulic telescopic rod 28 can be rotated and adjusted on the supporting protection side block 30 by cooperating with the hinged guide seat 29. The electrically controlled hydraulic telescopic rod 28 is hinged with the cooperating hinge rod 27, thereby driving the sheath seat 26 to rotate and cooperate on the limiting hinge rod 25. At this time, the sheath seat 26 rotates on the support guide block 21, and the voiceprint diagnosis and monitoring structure 1 also rotates to adjust the inclination, thereby helping to carry out voiceprint monitoring work in multiple positions.

[0037] The upper end of the sheath seat 26 is fixedly connected to the support ring seat 11, and the upper end of the motor 12 is connected to the second connecting gear plate 9 through the driving control gear plate 13. The second connecting gear plate 9 drives the fitting guide block 6, the first connecting gear plate 7, and the rotating rod 8 to rotate and connect through the rotating rod 8.

[0038] The first connecting gear disc 7 is rotatably connected between the rotating gear disc 5 and the rotating control gear disc 17. The rotating control gear disc 17 drives the monitoring controller 14, the conductive cover 15, the adapter guide shaft 16, the top plate block 18, the voiceprint monitoring sensor 19, and the wireless controller 20 to rotate by engaging with the first connecting gear disc 7.

[0039] The rotating gear disc 5 rotates in the opposite direction to the rotating control gear disc 17 . The rotating gear disc 5 rotates at the lower end of the docking bearing ring block 4 , and the docking bearing ring block 4 is fixedly connected to the lower end of the top plate block 18 .

[0040] The wireless controller 20 is electrically connected to the motor 12 and the electro-hydraulic telescopic rod 28. The electro-hydraulic telescopic rod 28 drives the matching hinge rod 27 and the sheath seat 26 to rotate and adjust on the limit hinge rod 25 through extension and contraction, thereby changing the overall inclination of the upper end voiceprint diagnosis and monitoring structure 1.

[0041] The bottom guide frame 22 is fixed at the bottom by the side support block 23 and the positioning leg 24 , and the support guide block 21 is hingedly arranged with the matching hinge guide seat 29 through the support protection side block 30 .

[0042] The monitoring controller 14 and the voiceprint monitoring sensor 19 are electrically connected, and the conductive cover 15 is connected to the monitoring controller 14 and the voiceprint monitoring sensor 19 to perform voiceprint diagnosis and monitoring work.

[0043] The working principle is: when in use, the user positions and fixes the bottom of the supporting and regulating structure 2 through the side support block 23 and the positioning tripod 24, collects the sound through the conductive cover 15, and then transmits it to the inside of the voiceprint monitoring sensor 19 and the monitoring controller 14, so as to perform monitoring work and judge the normal use of the power equipment, and the wireless controller 20 is connected to the external remote controller to perform remote control work. When the rotation adjustment of the voiceprint diagnosis monitoring structure 1 is required, the motor 12 is driven at this time to drive the driving control gear disc 13 to rotate, and the driving control gear disc 13 is engaged with the second connecting gear disc 9, which can drive the second connecting gear disc 9 and the rotating rod 8 to rotate on the bearing protection seat 10. At the same time, the rotating rod 8 is fixedly connected to the fitting guide block 6 and the first connecting gear disc 7. At this time, the first connecting gear disc 7 rotates, and the first connecting gear disc 7 is engaged with the rotating gear disc 5 and the rotating control gear disc 17, which can drive the rotating gear disc 5 and the rotating control gear disc 17 to rotate in the opposite direction. The rotating gear disc 5 is connected to the docking bearing The lower end of the ring block 4 rotates, and the upper docking bearing ring block 4 does not rotate with it. When the rotating control gear disk 17 rotates, it can drive the adaptor guide shaft 16 and the top plate block 18 to rotate, so that the monitoring controller 14, the conductive cover 15, the voiceprint monitoring sensor 19, and the wireless controller 20 can be rotated and adjusted to achieve position conversion, which helps to perform voiceprint monitoring. At the same time, the conductive cover 15 collects and the voiceprint monitoring sensor 19 performs analysis and processing. When the voiceprint diagnosis monitoring structure 1 needs to be performed, When the degree of adjustment is performed, the electrically controlled hydraulic telescopic rod 28 is telescopically adjusted. The electrically controlled hydraulic telescopic rod 28 can be rotated and adjusted on the supporting protection side block 30 by cooperating with the hinged guide seat 29. The electrically controlled hydraulic telescopic rod 28 is hingedly arranged with the cooperating hinge rod 27, thereby driving the sheath seat 26 to rotate and cooperate on the limiting hinge rod 25. At this time, the sheath seat 26 rotates on the supporting guide block 21, and the voiceprint diagnosis and monitoring structure 1 also rotates to adjust the inclination, thereby helping to perform voiceprint monitoring work in multiple positions and completing the work.

[0044] 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. A power equipment monitoring device based on voiceprint diagnosis, comprising a voiceprint diagnosis and monitoring structure (1) and a supporting and regulating structure (2), characterized in that: The upper end of the support and control structure (2) is rotatably connected to a soundprint diagnosis and monitoring structure (1), and the soundprint diagnosis and monitoring structure (1) comprises a soundprint diagnosis and monitoring component (3), a docking bearing ring block (4) and a rotating toothed disc (5). The lower end of the soundprint diagnosis and monitoring component (3) is fixedly connected to the docking bearing ring block (4), and the lower end of the docking bearing ring block (4) is rotatably connected to the rotating toothed disc (5). The inner side of the rotating toothed disc (5) is meshed with the first connecting toothed disc (7), and the first connecting toothed disc (7) is fixedly connected to a fitting guide block (6). The lower end of the first connecting toothed disc (7) is fixedly connected to the fitting guide block (6). A rotating rod (8) is fixedly connected, and the lower end of the rotating rod (8) is fixedly connected to a second connecting toothed disc (9), and the lower end of the second connecting toothed disc (9) is rotatably connected to a bearing protection seat (10), and the lower end of the bearing protection seat (10) is fixedly connected to a support ring seat (11), and a motor (12) is installed at the center of the support ring seat (11), and a driving control toothed disc (13) is driven and connected to the motor (12), and the driving control toothed disc (13) is meshed with the second connecting toothed disc (9), and the inner side of the first connecting toothed disc (7) is meshed with the voiceprint diagnosis monitoring component (3).

2. The power equipment monitoring device based on voiceprint diagnosis according to claim 1, characterized in that: The voiceprint diagnosis and monitoring component (3) includes a monitoring controller (14), a conductive cover (15), an adapting guide shaft (16), a rotation control gear disc (17), a top plate block (18), a voiceprint monitoring sensor (19) and a wireless controller (20). The upper end of the rotation control gear disc (17) is fixedly connected to the adapting guide shaft (16), the upper end of the adapting guide shaft (16) is fixedly connected to the top plate block (18), the upper end of the top plate block (18) is fixedly connected to the monitoring controller (14), one side of the monitoring controller (14) is fixedly connected to the conductive cover (15), and the side of the monitoring controller (14) away from the conductive cover (15) is installed with a voiceprint monitoring sensor (19) and a wireless controller (20). The monitoring controller (14), the voiceprint monitoring sensor (19) and the wireless controller (20) are electrically connected as a whole.

3. The power equipment monitoring device based on voiceprint diagnosis according to claim 2, characterized in that: The support and control structure (2) comprises a support guide block (21), a bottom guide frame (22), a side support block (23) and a positioning leg frame (24); the side end of the bottom guide frame (22) is fixedly connected to the side support block (23); the side end of the side support block (23) is fixedly connected to the positioning leg frame (24); and the upper end of the bottom guide frame (22) is fixedly connected to the support guide block (21).

4. The power equipment monitoring device based on voiceprint diagnosis according to claim 3 is characterized by: The support and control structure (2) comprises a limit hinge rod (25), a sheath seat (26), a matching hinge rod (27), an electric-controlled hydraulic telescopic rod (28), a matching hinge guide seat (29) and a support and protection side block (30). The upper center of the support guide block (21) is fixedly connected to the limit hinge rod (25). The side end of the limit hinge rod (25) is hingedly arranged with the sheath seat (26). The side of the sheath seat (26) facing away from the limit hinge rod (25) is fixedly connected with the matching hinge rod (27). The matching hinge rod (27) is hingedly provided with an electric-controlled hydraulic telescopic rod (28). The lower end of the electric-controlled hydraulic telescopic rod (28) is fixedly connected to the matching hinge guide seat (29). The matching hinge guide seat (29) is hingedly arranged with the support and protection side block (30).

5. The power equipment monitoring device based on voiceprint diagnosis according to claim 4 is characterized in that: The upper end of the sheath seat (26) is fixedly connected to the support ring seat (11); the upper end of the motor (12) is driven and connected to the second connecting toothed disc (9) through the driving control toothed disc (13); the second connecting toothed disc (9) drives the fitting guide block (6), the first connecting toothed disc (7), and the rotating rod (8) to rotate and connect through the rotating rod (8).

6. The power equipment monitoring device based on voiceprint diagnosis according to claim 5, characterized in that: The first connecting toothed disc (7) is rotatably connected between the rotating toothed disc (5) and the rotating control toothed disc (17). The rotating control toothed disc (17) drives the monitoring controller (14), the conductive cover (15), the adapting guide shaft (16), the top plate block (18), the voiceprint monitoring sensor (19), and the wireless controller (20) to rotate by engaging with the first connecting toothed disc (7).

7. The power equipment monitoring device based on voiceprint diagnosis according to claim 6, characterized in that: The rotating gear disc (5) rotates in the opposite direction to the rotating control gear disc (17). The rotating gear disc (5) rotates at the lower end of the docking bearing ring block (4), and the docking bearing ring block (4) is fixedly connected to the lower end of the top plate block (18).

8. The power equipment monitoring device based on voiceprint diagnosis according to claim 7, characterized in that: The wireless controller (20) is electrically connected to the motor (12) and the electrically controlled hydraulic telescopic rod (28). The electrically controlled hydraulic telescopic rod (28) drives the matching hinge rod (27) and the sheath seat (26) to rotate and adjust on the limit hinge rod (25) through telescoping, thereby changing the overall inclination of the upper end voiceprint diagnosis and monitoring structure (1).

9. The power equipment monitoring device based on voiceprint diagnosis according to claim 8, characterized in that: The bottom guide frame (22) is fixed at the bottom by means of a side support block (23) and a positioning foot frame (24); the support guide block (21) is hingedly arranged with a matching hinged guide seat (29) by means of a supporting protection side block (30).

10. The power equipment monitoring device based on voiceprint diagnosis according to claim 9, characterized in that: The monitoring controller (14) and the voiceprint monitoring sensor (19) are electrically connected, and the conductive cover (15) is connected to the monitoring controller (14) and the voiceprint monitoring sensor (19) to perform voiceprint diagnosis and monitoring work.