Splicing type mounting base for discharge sensor

By designing a spliced ​​discharge sensor installation base, using structures such as rack plates, rotating gears and locking iron blocks to achieve rapid assembly and locking, the problems of inconvenience in installation and limited protection effects in the prior art are solved, and higher installation stability and protection effects are achieved.

CN120044277APending Publication Date: 2025-05-27NANJING HUASHUI TECH CO LTD
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Patent Information

Application Number
CN202510420871.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-07
Publication Date
2025-05-27

AI Technical Summary

Technical Problem

The existing discharge sensor installation base is integrated and cannot be quickly spliced ​​and installed. After the installation is completed, the pressure block needs to be manually adjusted to fix the sensor. It cannot be fully adapted to the sensor installation, and the protection effect is limited.

Method used

A spliced ​​mounting base is designed, including the first and second assembled bases, which can quickly assemble and lock through structures such as rack plates, rotating gears, telescopic columns and locking iron blocks, and fix them with magnetic suction blocks and connecting blocks to ensure stable connection between the bases.

Benefits of technology

It realizes rapid splicing and installation of discharge sensors, and provides stable extrusion and protection through elastic design and cushioning, improving installation stability and usability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of discharge sensors, in particular to a discharge sensor splicing type mounting base which comprises a first splicing base body, the top surface of the first splicing base body is fixedly connected with a first side plate, a moving groove is formed in the right side of the first splicing base body, and a rotating gear is inserted into the first splicing base body. A rotating cylinder is fixedly connected to the front surface of the rotating gear, an arc-shaped groove is formed in the outer surface of the rotating cylinder, a convex column is installed in the arc-shaped groove, a telescopic column is arranged in the rotating cylinder, and the telescopic column and the convex column are fixedly connected. According to the invention, the discharge sensor is placed between the first assembly base and the first lifting plate, and similarly, the second lifting plate and the second assembly base are also placed, so that the first assembly base and the second assembly base can be rapidly installed, and locking operation can be carried out after installation is completed; and the stability and usability after splicing are greatly improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of discharge sensors, and particularly to a splicing type mounting base for a discharge sensor. Background Art

[0002] A sensor is a detection device that can sense the information to be measured and transform the sensed information into an electrical signal or other required form of information output according to certain rules to meet the requirements of information transmission, processing, storage, display, recording, and control, etc. A partial discharge sensor can collect the discharge information of an insulating plate. The fault diagnosis system receives the discharge signal collected by the sensor and calculates the discharge position and discharge amount through calculation and analysis. The discharge sensor also belongs to a type of sensor.

[0003] In this regard, Chinese Patent Application No.: CN222167157U discloses an installation mechanism for a GIS partial discharge sensor, including a base, a support frame, and a pressing block. The support frame is arranged above the base, the pressing block is slidably connected to the bottom of the support frame, three limiting grooves are equidistantly opened at the top of the pressing block, three optical rods are equidistantly fixedly connected to the top of the inner wall of the support frame, limiting plates are fixedly connected to the outside of the optical rods, the limiting plates are all in contact with the top of the pressing block, and the bottoms of the optical rods all extend into the corresponding limiting grooves. The beneficial effect of the present invention is that it can buffer the GIS partial discharge sensor, protect the partial discharge sensor from the influence of the external environment, ensure the normal operation of the sensor, provide appropriate protection for the sensor, improve the operation reliability of the entire GIS device, reduce unnecessary operation and maintenance intervention caused by sensor failures, and greatly improve the operation quality and use efficiency compared with traditional devices.

[0004] However, during the actual installation process of the discharge sensor, the overall mounting base is integrally installed, and rapid splicing installation cannot be achieved. At the same time, only manual adjustment can be used to adjust the position of the pressing block after installation, and only manual adjustment can be used to fix the installed discharge sensor. Moreover, it cannot be fully adaptively installed with the discharge sensor, and the overall protection effect on the discharge sensor also has limitations. Therefore, improving and modifying the above problems has become an urgent problem to be solved at present. Summary of the Invention

[0005] The purpose of the present invention is to provide a spliced mounting base for a discharge sensor, so as to solve the problems proposed in the above-mentioned background technology. The overall mounting base is integrally mounted, which cannot achieve rapid splicing and installation. At the same time, after installation, the position of the pressing block can only be adjusted manually, and the installed discharge sensor can only be fixed by manual adjustment. Moreover, it cannot be fully adapted to the installation with the discharge sensor, and the overall protection effect on the discharge sensor is also limited.

[0006] To achieve the above purpose, the present invention provides the following technical solution: A spliced mounting base for a discharge sensor, including a first splicing base, a first side plate is fixedly connected to the top surface of the first splicing base, a moving groove is opened inside the right side of the first splicing base, a rotating gear is inserted and installed inside the first splicing base, a rotating cylinder is fixedly connected to the front surface of the rotating gear, an arc groove is opened on the outer surface of the rotating cylinder, a convex column is installed inside the arc groove, a telescopic column is arranged inside the rotating cylinder, the telescopic column is fixedly connected to the convex column, a locking iron block is fixedly connected to the front surface of the telescopic column, and fitting grooves are opened on the front and rear surfaces of the first splicing base, and the fitting grooves are mutually adapted to the locking iron block;

[0007] A rack plate, the rack plate is installed on the lower surface of the rotating gear, the rack plate is meshed with the rotating gear, a second splicing base is installed on the right side of the rack plate, a second side plate is fixedly connected to the top surface of the second splicing base, a second lifting plate is arranged on the left side of the second side plate, connecting blocks are fixedly connected to the front and rear surfaces of the second splicing base, and magnetic attraction blocks are fixedly connected to the left sides of the connecting blocks.

[0008] Preferably, a through groove is opened on the right side of the first side plate, a first lifting plate is slidably installed inside the through groove, a first elastic limiting cylinder is installed at the lower end of the first lifting plate, and the first elastic limiting cylinder is installed inside the through groove.

[0009] Preferably, a locking groove is opened inside the right side of the first lifting plate, a top block is fixedly connected to the inner wall of the first lifting plate, and a clamping inclined block is fixedly connected to the lower end of the top block.

[0010] Preferably, a moving plate is fixedly connected to the left side of the second lifting plate, and an elastic rotating shaft is inserted and installed inside the moving plate.

[0011] Preferably, a stabilizing frame is fixedly connected to the outer surface of the elastic rotating shaft, an arc block is fixedly connected to the outer surface of the stabilizing frame, and the arc block is mutually adapted to the clamping inclined block.

[0012] Preferably, a stabilizing frame is fixedly connected to the outer surface of the elastic rotating shaft, and an arc-shaped block is fixedly connected to the outer surface of the stabilizing frame. The arc-shaped block is adapted to the clamping inclined block.

[0013] Preferably, a pressing cylinder is arranged inside the pressing groove, and a pressing inner tube is fixedly connected to the top surface of the pressing cylinder.

[0014] Preferably, an elastic strip is arranged inside the pressing inner tube, an adapting tube is arranged on the top surface of the elastic strip, the adapting tube is adapted to the pressing inner tube, and a top ring is fixedly connected to the top surface of the adapting tube.

[0015] Preferably, a sliding groove is formed inside the top frame, a pressing plate is slidably installed inside the sliding groove, a second elastic limiting cylinder is fixedly connected to the lower surface of the pressing plate, and a limiting groove is formed on the outer surface of the top frame. The limiting groove is adapted to the pressing plate.

[0016] Preferably, a telescopic cylinder and a spring body are sequentially installed from front to back in the middle of the lower end of the first lifting plate. There are two groups of telescopic cylinders, and pressing blocks are fixedly connected to the lower ends of the telescopic cylinder and the spring body.

[0017] Compared with the prior art, the beneficial effects of the present invention are:

[0018] 1. When assembling the splicing installation base of the discharge sensor, first align the first assembly base and the second assembly base, and then slowly move the second assembly base to the right side of the first assembly base, and then the rack plate will enter the inside of the moving groove, and then the rack plate will move for a period of time and its upper surface will contact the rotating gear, so that the rotating gear and the rack plate will mesh with each other, thereby driving the rotating gear to rotate, and then the rack plate continues to move, and then the rotating gear will drive the rotating cylinder to rotate, and when the rotating cylinder rotates, the arc groove will slide inside the convex column, so that the telescopic column will extend out, and at this time the telescopic column drives the locking iron block to move forward, and when the locking iron block extends from the inside of the adapter groove, the right side of the first assembly base and the left side of the second assembly base conflict with each other, and the overall installation effect is good. At the same time, the magnetic block and the connecting block will also be installed inside the locking iron block, and the locking iron block and the magnetic block are magnetically attracted to each other, and the overall installation is fixed by magnetic attraction to ensure The locking mechanism is designed to lock the first and second assembling bases when the second assembling base is in a state of being moved toward the first assembling base.

[0019] 2. For the spliced mounting base of the discharge sensor, after assembly, the elastic design of the telescopic cylinder and the spring body can adaptively press the pressing block against the upper surface of the discharge sensor, ensuring a stable contact effect with the discharge sensor and the extrusion stability of the installed discharge sensor. Subsequently, when the first assembly base and the second assembly base are assembled as a whole, the pressing cylinder is installed inside the pressing groove at this time. Then, the pressing cylinder will squeeze the buffer pad, and then the adapter tube is installed inside the pressing inner tube. As a result, the adapter tube will apply pressure to the pressing inner tube. At this time, the elastic strip can buffer this pressure. Then, the pressing cylinder will press the buffer pad. By the pressing cylinder contacting the buffer pad, the buffer effect after pressing can be ensured. At the same time, the buffer pad will apply force to the first lifting plate and the second lifting plate, so that the first lifting plate and the second lifting plate will also move downward. The first elastic limiting cylinder can buffer the downward movement of the first lifting plate to a certain extent. Subsequently, when the first lifting plate descends, it will also drive the overall descent of the pressing block. When the pressing block descends as a whole, it will make the pressing block fit more stably on the upper surface of the discharge sensor and can also play a certain protective role. Similarly, the second lifting plate can complete the same operation. After the adapter tube and the top ring are installed as a whole, at this time, the pressing plate will fit and be installed on the upper surface of the top ring, so that the state of the top ring and the adapter tube inside the pressing inner tube can be limited, and thus the positions of the top ring and the adapter tube can always be limited, that is, the position of the discharge sensor can always be stably fitted and contacted. The overall protection effect is good. Then, when subsequent external components fall onto the surface of the pressing plate, at this time, the pressing plate will move downward. Then, the pressing plate is limited to move downward through the second elastic limiting cylinder. The adapter tube will squeeze the elastic strip downward, and then the pressing cylinder will also move downward. Subsequently, the buffer pad will drive the first lifting plate and the second lifting plate downward. Through layers of buffering, the downward displacement size of the first lifting plate and the second lifting plate is small, and the downward displacement of the first lifting plate and the second lifting plate can also make the discharge sensor fit more stably. The overall protection effect is reliable, and the installation is relatively convenient, reflecting the functionality of the design. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 is a three-dimensional schematic diagram of the structure of the present invention;

[0021] Figure 2 is a split schematic diagram of the structures of the first assembly base and the second assembly base of the present invention;

[0022] Figure 3 is a three-dimensional schematic diagram of the structures of the connecting block and the rack plate of the present invention;

[0023] Figure 4 is a split schematic diagram of the structures of the moving plate and the top block of the present invention;

[0024] Figure 5Schematic diagram of the split structure of the first lifting plate and the pressing block of the present invention;

[0025] Figure 6 Stereoscopic schematic diagram of the structure of the first assembly base and the first side plate of the present invention;

[0026] Figure 7 Schematic diagram of the split structure of the top frame and the adapter tube of the present invention;

[0027] Figure 8 Stereoscopic schematic diagram of the structure of the top frame and the pressing plate of the present invention.

[0028] In the figure: 1. First assembly base; 2. First side plate; 3. Moving groove; 4. Rotating gear; 5. Rotating cylinder; 6. Arc groove; 7. Convex column; 8. Telescopic column; 9. Locking iron block; 10. Rack plate; 11. Second assembly base; 12. Second side plate; 13. Second lifting plate; 14. Connecting block; 15. Magnetic attraction block; 16. First lifting plate; 17. Locking groove; 18. First elastic limiting cylinder; 19. Adapter groove; 20. Through groove; 21. Moving plate; 22. Elastic rotating shaft; 23. Stabilizing frame; 24. Arc block; 25. Top block; 26. Clamping inclined block; 27. Top frame; 28. Connecting plate; 29. Pressing groove; 30. Buffer pad; 31. Pressing cylinder; 32. Pressing inner tube; 33. Elastic strip; 34. Adapter tube; 35. Top ring; 36. Sliding groove; 37. Pressing plate; 38. Second elastic limiting cylinder; 39. Limiting groove; 40. Telescopic cylinder; 41. Spring body; 42. Pressing block. Detailed implementation manners

[0029] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0030] Please refer to Figures 1 - 8 , an embodiment provided by the present invention:

[0031] A spliced mounting base for a discharge sensor. The locking iron block 9, magnetic attraction block 15, elastic strip 33, and telescopic cylinder 40 used in this application are all products that can be directly purchased on the market. Their principles and connection methods are all prior arts well-known to those skilled in the art, so they will not be elaborated here. It includes a first assembled base 1. The top surface of the first assembled base 1 is fixedly connected with a first side plate 2. A moving groove 3 is opened inside the right side of the first assembled base 1. A rotating gear 4 is inserted and installed inside the first assembled base 1. The front surface of the rotating gear 4 is fixedly connected with a rotating cylinder 5. An arc-shaped groove 6 is opened on the outer surface of the rotating cylinder 5. A convex column 7 is installed inside the arc-shaped groove 6. A telescopic column 8 is arranged inside the rotating cylinder 5. The telescopic column 8 is fixedly connected with the convex column 7. The front surface of the telescopic column 8 is fixedly connected with a locking iron block 9. Adaptation grooves 19 are opened on the front and rear surfaces of the first assembled base 1. The adaptation grooves 19 are adapted to the locking iron block 9. A through groove 20 is opened on the right side of the first side plate 2. A first lifting plate 16 is slidably installed inside the through groove 20. A first elastic limiting cylinder 18 is installed at the lower end of the first lifting plate 16. The first elastic limiting cylinder 18 is installed inside the through groove 20. A locking groove 17 is opened inside the right side of the first lifting plate 16. A top block 25 is fixedly connected to the inner wall of the first lifting plate 16. A clamping inclined block 26 is fixedly connected to the lower end of the top block 25. The top surface of the first assembled base 1 is fixedly connected with a top frame 27. A connecting plate 28 is fixedly connected to the outer surface of the top frame 27. A pressing groove 29 is opened inside the connecting plate 28. Buffer pads 30 are arranged on the top surfaces of the first lifting plate 16 and the second lifting plate 13. A pressing cylinder 31 is arranged inside the pressing groove 29. A pressing inner tube 32 is fixedly connected to the top surface of the pressing cylinder 31. An elastic strip 33 is arranged inside the pressing inner tube 32. An adaptation tube 34 is arranged on the top surface of the elastic strip 33. The adaptation tube 34 is adapted to the pressing inner tube 32. A top ring 35 is fixedly connected to the top surface of the adaptation tube 34. A sliding groove 36 is opened inside the top frame 27. A pressing plate 37 is slidably installed inside the sliding groove 36. A second elastic limiting cylinder 38 is fixedly connected to the lower surface of the pressing plate 37. A limiting groove 39 is opened on the outer surface of the top frame 27. The limiting groove 39 is adapted to the pressing plate 37. A telescopic cylinder 40 and a spring body 41 are sequentially installed from front to back in the middle of the lower end of the first lifting plate 16. There are two groups of telescopic cylinders 40. The lower ends of the telescopic cylinder 40 and the spring body 41 are both fixedly connected with a pressing block 42. When the assembly is completed, at this time, through the elastic design of the telescopic cylinder 40 and the spring body 41, the pressing block 42 can be adaptively abutted against the upper surface of the discharge sensor, ensuring the stable abutting effect on the discharge sensor and the extrusion stability of the installed discharge sensor. Subsequently, when the first assembled base 1 and the second assembled base 11 are integrally assembled, at this time, the pressing cylinder 31 is installed inside the pressing groove 29, and then the pressing cylinder 31 will squeeze the buffer pad 30, and then the adaptation tube 34 will be installed inside the pressing inner tube 32. Thus, the adaptation tube 34 will apply pressure to the pressing inner tube 32.At this time, the elastic strip 33 can buffer the pressure, and then the pressing cylinder 31 will press the buffer pad 30. By the pressing cylinder 31 contacting the buffer pad 30, the buffer effect after pressing can be ensured. At the same time, the buffer pad 30 will apply forces to the first lifting plate 16 and the second lifting plate 13, so that the first lifting plate 16 and the second lifting plate 13 will also move downward. The first elastic limiting cylinder 18 can buffer the downward movement of the first lifting plate 16 to a certain extent. Subsequently, when the first lifting plate 16 descends, it will also drive the overall descent of the pressing block 42. When the pressing block 42 descends as a whole, it will make the pressing block 42 fit more stably on the upper surface of the discharge sensor and can also play a certain protective role. Similarly, the second lifting plate 13 can complete the same operation. When the adapter tube 34 and the top ring 35 are installed as a whole, at this time, the pressing plate 37 will fit and install on the upper surface of the top ring 35, so that the top ring 35 and the adapter tube 34 can be limited in the state inside the pressing inner tube 32, and thus the positions of the top ring 35 and the adapter tube 34 can be limited all the time, that is, the position of the discharge sensor can be stably fitted and abutted all the time, and the overall protection effect is good. Then, when subsequent external components fall onto the surface of the pressing plate 37, at this time, the pressing plate 37 will move downward, and then the pressing plate 37 is limited to move downward through the second elastic limiting cylinder 38. The adapter tube 34 will squeeze the elastic strip 33 downward, and then the pressing cylinder 31 will also move downward. Subsequently, the buffer pad 30 will drive the first lifting plate 16 and the second lifting plate 13 downward. Through layers of buffering, the downward displacement dimensions of the first lifting plate 16 and the second lifting plate 13 are smaller, and the downward displacement of the first lifting plate 16 and the second lifting plate 13 can also make the discharge sensor fit more stably. The overall protection effect is reliable and it is more convenient to install;

[0032] The rack plate 10 is installed on the lower surface of the rotating gear 4. The rack plate 10 meshes with the rotating gear 4. A second assembly base 11 is installed on the right side of the rack plate 10. A second side plate 12 is fixedly connected to the top surface of the second assembly base 11. A second lifting plate 13 is arranged on the left side of the second side plate 12. Connecting blocks 14 are fixedly connected to the front and rear surfaces of the second assembly base 11. A magnetic attraction block 15 is fixedly connected to the left side of the connecting block 14. A moving plate 21 is fixedly connected to the left side of the second lifting plate 13. An elastic rotating shaft 22 is inserted and installed inside the moving plate 21. A stabilizing frame 23 is fixedly connected to the outer surface of the elastic rotating shaft 22. An arc-shaped block 24 is fixedly connected to the outer surface of the stabilizing frame 23. The arc-shaped block 24 is adapted to the clamping inclined block 26. During assembly, first align the first assembly base 1 and the second assembly base 11, and then slowly move the second assembly base 11 to the right side of the first assembly base 1. Subsequently, the rack plate 10 will enter the inside of the moving groove 3. After the rack plate 10 moves for a period of time, its upper surface will contact the rotating gear 4, so that the rotating gear 4 meshes with the rack plate 10, thereby driving the rotating gear 4 to rotate. Subsequently, the rack plate 10 continues to move, and then the rotating gear 4 drives the rotating cylinder 5 to rotate. When the rotating cylinder 5 rotates, the arc-shaped groove 6 will slide inside the convex column 7, so that the telescopic column 8 will extend out for operation. At this time, the telescopic column 8 drives the locking iron block 9 to move forward. When the locking iron block 9 extends out from the inside of the fitting groove 19, at this time, the right side of the first assembly base 1 abuts against the left side of the second assembly base 11, and the overall installation effect is good. At the same time, the magnetic attraction block 15 and the connecting block 14 will also be installed inside the locking iron block 9, and the locking iron block 9 and the magnetic attraction block 15 are magnetically attracted to each other. After the overall installation, it is fixed by magnetic attraction to ensure the connection stability between the first assembly base 1 and the second assembly base 11. At the same time, when the second assembly base 11 moves towards the first assembly base 1, at this time, the moving plate 21 will also enter the inside of the locking groove 17. When the moving plate 21 moves, the upper surface of the arc-shaped block 24 will abut against the lower surface of the clamping inclined block 26. When the clamping inclined block 26 abuts against the arc-shaped block 24, the stabilizing frame 23 and the elastic rotating shaft 22 will rotate. Then when the installation of the first assembly base 1 and the second assembly base 11 is completed, at this time, the arc-shaped block 24 will be clamped between the two clamping inclined blocks 26, so as to lock the first assembly base 1 and the second assembly base 11, avoiding the unstable phenomenon after the first assembly base 1 and the second assembly base 11 are assembled. Then place the discharge sensor between the first assembly base 1 and the first lifting plate 16. Similarly, it will also be placed between the second lifting plate 13 and the second assembly base 11. This design can quickly install the first assembly base 1 and the second assembly base 11, and can also perform locking operations after the installation is completed.

[0033] Working principle: When in use and during assembly, first align the first assembly base 1 and the second assembly base 11. Then slowly move the second assembly base 11 to the right side of the first assembly base 1. Subsequently, the rack plate 10 will enter the interior of the moving groove 3. After the rack plate 10 moves for a while, its upper surface will come into contact with the rotating gear 4, so that the rotating gear 4 meshes with the rack plate 10, which can drive the rotating gear 4 to rotate. Subsequently, the rack plate 10 continues to move, and then the rotating gear 4 will drive the rotating cylinder 5 to rotate. When the rotating cylinder 5 rotates, the arc-shaped groove 6 will slide inside the convex column 7, so that the telescopic column 8 will extend out for operation. At this time, the telescopic column 8 drives the locking iron block 9 to move forward. When the locking iron block 9 extends out from the interior of the fitting groove 19, at this time, the right side of the first assembly base 1 abuts against the left side of the second assembly base 11. At the same time, the magnetic attraction block 15 and the connecting block 14 will also be installed inside the locking iron block 9, and the locking iron block 9 and the magnetic attraction block 15 are magnetically attracted to each other. After the overall installation, it is fixed by magnetic attraction to ensure the connection stability between the first assembly base 1 and the second assembly base 11. At the same time, when the second assembly base 11 moves towards the first assembly base 1, at this time, the moving plate 21 will also enter the interior of the locking groove 17. When the moving plate 21 moves, the upper surface of the arc-shaped block 24 will abut against the lower surface of the clamping inclined block 26. When the clamping inclined block 26 abuts against the arc-shaped block 24, the stabilizing frame 23 and the elastic rotating shaft 22 will rotate. Then when the first assembly base 1 and the second assembly base 11 are installed, at this time, the arc-shaped block 24 will be clamped between the two clamping inclined blocks 26, so that the first assembly base 1 and the second assembly base 11 can be locked. Then place the discharge sensor between the first assembly base 1 and the first lifting plate 16. Similarly, it will also be placed between the second lifting plate 13 and the second assembly base 11;

[0034] After the assembly is completed, the elastic design of the telescopic cylinder 40 and the spring body 41 can adaptively abut the pressing block 42 against the upper surface of the discharge sensor. Subsequently, when the first assembly base 1 and the second assembly base 11 are integrally assembled, the pressing cylinder 31 is installed inside the pressing groove 29 at this time. Then, the pressing cylinder 31 will squeeze the buffer pad 30, and then the adapter tube 34 is installed inside the pressing inner tube 32. Thus, the adapter tube 34 will apply pressure to the pressing inner tube 32. At this time, the elastic strip 33 can buffer this pressure. Then, the pressing cylinder 31 will press the buffer pad 30. By the pressing cylinder 31 contacting the buffer pad 30, the buffer effect after pressing can be ensured. At the same time, the buffer pad 30 will apply force to the first lifting plate 16 and the second lifting plate 13. Thus, the first lifting plate 16 and the second lifting plate 13 will also move downward. The first elastic limiting cylinder 18 can buffer the downward movement of the first lifting plate 16 to a certain extent. Subsequently, when the first lifting plate 16 descends, it will also drive the overall descent of the pressing block 42. When the pressing block 42 descends as a whole, it will make the pressing block 42 fit more stably on the upper surface of the discharge sensor. Similarly, the second lifting plate 13 can complete the same operation. When the adapter tube 34 and the top ring 35 are integrally installed, at this time, the pressing plate 37 will fit and install on the upper surface of the top ring 35. Thus, the state of the top ring 35 and the adapter tube 34 inside the pressing inner tube 32 can be limited, and thus the positions of the top ring 35 and the adapter tube 34 can always be limited, that is, the position of the discharge sensor can always be stably abutted and fitted, and the overall protection effect is better. Then, when subsequent external components fall onto the surface of the pressing plate 37, at this time, the pressing plate 37 will move downward. Then, the pressing plate 37 is limited to move downward through the second elastic limiting cylinder 38. The adapter tube 34 will squeeze the elastic strip 33 downward, and then the pressing cylinder 31 will also move downward. Subsequently, the buffer pad 30 will drive the first lifting plate 16 and the second lifting plate 13 downward. Through layers of buffering, the downward displacement size of the first lifting plate 16 and the second lifting plate 13 is smaller, and the downward displacement of the first lifting plate 16 and the second lifting plate 13 can also fit the discharge sensor more stably. The above is all the working principles of the present invention.

[0035] The above is only a preferred embodiment of the present invention, and it is not intended to limit the present invention in any form; any ordinary technician in the industry can smoothly implement the present invention according to the illustrations in the specification and the above description; however, any minor changes, modifications, and equivalent variations made by those skilled in the art within the scope of the technical solution of the present invention using the technical content disclosed above are all equivalent embodiments of the present invention; at the same time, any equivalent changes, modifications, and variations made to the above embodiments based on the essential technology of the present invention still fall within the protection scope of the technical solution of the present invention.

Claims

1. A discharge sensor splicing installation base, comprising a first assembling base (1), wherein the top surface of the first assembling base (1) is fixedly connected to a first side plate (2), characterized in that: A movable groove (3) is provided inside the right side of the first assembly base (1); a rotating gear (4) is inserted and installed inside the first assembly base (1); a rotating cylinder (5) is fixedly connected to the front surface of the rotating gear (4); an arc groove (6) is provided on the outer surface of the rotating cylinder (5); a convex column (7) is installed inside the arc groove (6); a telescopic column (8) is provided inside the rotating cylinder (5); the telescopic column (8) is fixedly connected to the convex column (7); a locking iron block (9) is fixedly connected to the front surface of the telescopic column (8); and an adapting groove (19) is provided on the front and rear surfaces of the first assembly base (1); the adapting groove (19) and the locking iron block (9) are adapted to each other; A rack plate (10), wherein the rack plate (10) is mounted on the lower surface of the rotating gear (4), the rack plate (10) and the rotating gear (4) are meshed with each other, a second assembly base (11) is mounted on the right side of the rack plate (10), a second side plate (12) is fixedly connected to the top surface of the second assembly base (11), a second lifting plate (13) is arranged on the left side of the second side plate (12), a connection block (14) is fixedly connected to the front and rear surfaces of the second assembly base (11), and a magnetic attraction block (15) is fixedly connected to the left side of the connection block (14).

2. A discharge sensor splicing mounting base according to claim 1, characterized in that: A through slot (20) is provided on the right side of the first side plate (2), a first lifting plate (16) is slidably mounted inside the through slot (20), a first elastic limiting cylinder (18) is mounted at the lower end of the first lifting plate (16), and the first elastic limiting cylinder (18) is mounted inside the through slot (20).

3. A discharge sensor splicing mounting base according to claim 2, characterized in that: A locking groove (17) is provided inside the right side of the first lifting plate (16), a top block (25) is fixedly connected to the inner wall of the first lifting plate (16), and a locking inclined block (26) is fixedly connected to the lower end of the top block (25).

4. The discharge sensor splicing mounting base according to claim 1, characterized in that: The left side of the second lifting plate (13) is fixedly connected to a moving plate (21), and an elastic rotating shaft (22) is inserted and installed inside the moving plate (21).

5. The discharge sensor splicing installation base according to claim 4, characterized in that: The outer surface of the elastic rotating shaft (22) is fixedly connected to a stabilizing frame (23), and the outer surface of the stabilizing frame (23) is fixedly connected to an arc-shaped block (24), and the arc-shaped block (24) and the fixing oblique block (26) are mutually adapted.

6. The discharge sensor splicing installation base according to claim 2, characterized in that: The top surface of the first assembly base (1) is fixedly connected to a top frame (27), the outer surface of the top frame (27) is fixedly connected to a connecting plate (28), a pressing groove (29) is provided inside the connecting plate (28), and the top surfaces of the first lifting plate (16) and the second lifting plate (13) are provided with buffer pads (30).

7. A discharge sensor splicing installation base according to claim 6, characterized in that: A pressing cylinder (31) is disposed inside the pressing groove (29), and a pressing inner tube (32) is fixedly connected to the top surface of the pressing cylinder (31).

8. The discharge sensor splicing installation base according to claim 7, characterized in that: An elastic strip (33) is arranged inside the pressing inner tube (32), an adapting tube (34) is arranged on the top surface of the elastic strip (33), the adapting tube (34) and the pressing inner tube (32) are adapted to each other, and a top ring (35) is fixedly connected to the top surface of the adapting tube (34).

9. The discharge sensor splicing installation base according to claim 6, characterized in that: A slide groove (36) is provided inside the top frame (27), a pressing plate (37) is slidably installed inside the slide groove (36), a second elastic limiting cylinder (38) is fixedly connected to the lower surface of the pressing plate (37), and a limiting groove (39) is provided on the outer surface of the top frame (27), and the limiting groove (39) and the pressing plate (37) are adapted to each other.

10. The discharge sensor splicing installation base according to claim 2, characterized in that: A telescopic cylinder (40) and a spring body (41) are sequentially installed in the middle of the lower end of the first lifting plate (16) from front to back, and the telescopic cylinder (40) is provided in two groups. The lower ends of the telescopic cylinder (40) and the spring body (41) are both fixedly connected with a pressing block (42).

Citation Information

Patent Citations

  • Installation mechanism of GIS partial discharge sensor

    CN222167157U