An assembled sensor based on multi-source data for smart lines

By designing a smart circuit with a multi-source data-based assembly sensor, and using components such as base, pushing mechanism, rotating mechanism and clamping mechanism, the problem of installation difficulty of sensors of different specifications in the prior art is solved, and the stable installation and assembly convenience of multiple sensors is achieved.

CN115824279BActive Publication Date: 2025-05-16CSG EHV POWER TRANSMISSION
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202211376529.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-11-04
Publication Date
2025-05-16
Estimated Expiration
2042-11-04

AI Technical Summary

Technical Problem

In the prior art, the installation components are usually designed for a single fixed specification sensor, and cannot adapt to sensors of different specifications, which makes it more troublesome to install a variety of sensors of different specifications, increasing the difficulty of assembling sensors based on multi-source data in smart lines.

Method used

A prefabricated sensor based on multi-source data for smart circuits is designed, using components such as base, pushing mechanism, rotating mechanism and clamping mechanism. Through the use of four carriers and four clamping mechanisms, it can be clamped and fixed according to the specifications of the sensor, and the bearing seat can be moved through the rotating mechanism to achieve stable installation of sensors of various specifications.

Benefits of technology

It realizes stable installation of sensors of different specifications on smart lines, simplifies the assembly process, improves assembly convenience and stability, and adapts to sensor needs of different specifications.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN115824279B_ABST
    Figure CN115824279B_ABST
Patent Text Reader

Abstract

The present invention discloses an assembled sensor based on multi-source data for smart lines, including a base, a pushing mechanism is provided on both sides of the lower end of the base, and a rotating mechanism is provided at the lower end of the base. The present invention can clamp and fix the sensor according to the size of the sensor during the assembly process of the sensor based on multi-source data for smart lines, so that sensors of various specifications can be fixedly installed on the mounting component more stably, and multiple sensors of various specifications can be fixedly installed on the mounting component together, so as to realize the assembly of the sensor based on multi-source data for smart lines, and at the same time, the stability of multiple sensors after installation can be ensured, which effectively improves the convenience of the sensor based on multi-source data for smart lines during assembly, and can ensure the stability of the sensor based on multi-source data for smart lines after assembly.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the field of sensor technology, and in particular to an assembled sensor based on multi-source data for a smart circuit. Background Art

[0002] Smart lines are systems used in the wild to monitor the stability of line transmission. When monitoring lines, smart lines need to monitor data through various types of IoT sensors to understand the surrounding environmental conditions and achieve the purpose of multi-source data monitoring, so as to facilitate timely detection and processing of problems. However, the existing technology generally uses different detection equipment for different environmental data and uses different sensors to detect and transmit data, which results in the need to set up multiple sensors and supporting installation components and equipment at a single collection point.

[0003] When the sensor is in use, it needs to be fixed in the corresponding position through the installation components, so as to facilitate the connection with the corresponding components and facilitate operation. However, the existing installation components are generally installed for sensors of a single fixed specification, and cannot be used universally. They cannot be adjusted according to the size of the sensor and cannot be applied to sensors of different specifications. As a result, it is more troublesome to install and fix multiple sensors of different specifications, which increases the difficulty of assembling sensors based on multi-source data for smart routes, so improvements are needed. Summary of the invention

[0004] The purpose of the present invention is to overcome the shortcomings that existing mounting components are generally designed to install sensors of a single fixed specification, cannot be applied to sensors of different specifications, cannot be adjusted according to the size of the sensor, resulting in multiple sensors of different specifications being more troublesome to install, and increases the difficulty of assembling sensors based on multi-source data for smart circuits. An assembled sensor based on multi-source data for smart circuits is proposed.

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

[0006] An assembled sensor based on multi-source data for a smart line includes a base, a push mechanism is provided on both sides of the lower end of the base, a rotating mechanism is provided at the lower end of the base, a bearing plate is provided on the rotating mechanism, four bearing seats are provided at equal intervals at the upper end of the bearing plate, and a clamping mechanism is provided in each of the four bearing seats;

[0007] The carrying plate is arranged at the upper end of the base, and a carrying plate is fixed in each of the four carrying seats. Long strips are opened on both sides of the four carrying plates. Two clamps are symmetrically arranged on each of the four clamping mechanisms. The eight clamps are respectively slidably sleeved in the corresponding eight long strips. Two cross bars are fixed in the eight long strips. The eight clamps are respectively slidably sleeved on sixteen cross bars. Rubber pads are arranged on the opposite sides of the eight clamps. A main body is arranged in each of the four carrying seats. The lower ends of the four main bodies respectively abut against the upper ends of the four carrying plates, and the eight rubber pads respectively abut against the two sides of the four main bodies.

[0008] Preferably, in order to clamp and fix sensors of different sizes, the four clamping mechanisms include four positive and negative threaded rods that are rotatably connected to the four bearing seats respectively, both sides of the four positive and negative threaded rods are threaded with threaded sleeves, the eight threaded sleeves are respectively fixedly connected to the lower ends of the corresponding eight clamps, and one end of the four positive and negative threaded rods passes through one side of the four bearing seats respectively and are fixedly connected to a rotating part.

[0009] Preferably, in order to limit the movement of the two clamps after the sensor is clamped and fixed, so that the two clamps can stably clamp and fix the sensor, a disk is provided in each of the four rotating members, and fixing rods are slidably sleeved on both sides of the four disks, and eight fixing rods are respectively fixedly connected to both sides of the four rotating members, and connecting blocks are fixed on the other sides of the four disks, and openings are provided on the other sides of the four rotating members, and the four connecting blocks are respectively penetrated into the corresponding four openings, and first springs are sleeved on the eight fixing rods, and one end of the eight first springs is respectively fixedly connected to the other side of the corresponding four disks, and the other ends of the eight first springs are respectively fixedly connected to the inner walls of the other sides of the four rotating members, and ten clamping rods are fixed at equal intervals on one side of the four disks, and forty clamping rods are respectively slidably sleeved on one side of the corresponding four rotating members, and ten clamping grooves are provided at equal intervals on one side of the four bearing seats, and one ends of the forty clamping rods are respectively inserted into the corresponding forty clamping grooves.

[0010] Preferably, in order to drive the four supporting seats to move and make the sensor more convenient and quick to install, the rotating mechanism includes a servo motor fixedly installed at the lower end of the base through a fixing ring, the end of the output shaft of the servo motor is fixedly connected with a driving bevel gear, the middle part of the base is rotatably connected with a driving rod, the upper end of the driving rod passes through the upper end of the base and is fixedly connected to the middle part of the lower end of the supporting plate, the lower end of the driving rod is fixedly sleeved with a transmission bevel gear, and the transmission bevel gear is meshed with a lower end of one side of the driving bevel gear.

[0011] Preferably, in order to keep the disc rotating smoothly, four sliding rods are fixed around the lower end of the supporting plate, and the lower ends of the four sliding rods are rotatably connected to pulleys. A circular sliding groove is commonly opened around the upper end of the base, and the four pulleys are slidably sleeved in the circular sliding groove.

[0012] Preferably, in order to block and open the vents, the vents can be blocked on rainy days to prevent rainwater from entering the base through the vents. The pushing mechanism includes two cylinders fixedly mounted on both sides of the lower end of the base, and the telescopic ends of the two cylinders are fixed with fixed blocks. The other sides of the two fixed blocks are fixed with oblique pushing blocks, and the other sides of the two oblique pushing blocks are correspondingly provided with oblique pressing blocks above the other sides. The other sides of the two oblique pressing blocks are fixed with waterproof boards, and the other sides of the two waterproof boards are evenly fixed with multiple waterproof plugs. Multiple ventilation holes are evenly spaced on both sides of the base, and the multiple waterproof plugs are respectively provided corresponding to the multiple ventilation holes.

[0013] Preferably, in order to prevent dust from entering the base through the vents, a dustproof net is commonly provided on one side of the multiple vents located on the same side, and the two dustproof nets are fixedly connected to the two sides of the base by four second screws, and the other sides of the two waterproof plates are affixed with sealing gaskets.

[0014] Preferably, in order to keep the inclined push block vertically lifted during movement, sleeves are fixed on both sides of the two inclined push blocks, vertical rods are slidably sleeved in the four sleeves, and the two ends of the four vertical rods are respectively fixedly connected to the upper and lower ends of the base.

[0015] Preferably, in order to make the two waterproof plates automatically reset when not pushed, the multiple waterproof plugs can be moved out of the multiple ventilation holes through the resetting of the two waterproof plates, the four corners of the two waterproof plates are slidably sleeved with round rods, the other ends of the eight round rods are respectively fixedly connected to the relative inner walls of the base, the opposite ends of the eight round rods are respectively fixed with blocks, the eight round rods are respectively sleeved with second springs, the opposite ends of the eight second springs are respectively fixedly connected to the four corners on the other side of the two waterproof plates, and the other ends of the eight second springs are respectively fixedly connected to the relative inner walls of the base.

[0016] Preferably, in order to fix the base in a corresponding position, reinforcement pieces are provided at the lower ends of both sides of the base, four reinforcement pieces are fixedly connected to the base by two first screws, and expansion bolts are provided through both sides of the four reinforcement pieces.

[0017] The beneficial effects of the present invention are:

[0018] 1. Through the use of four bearing seats and four clamping mechanisms, four sensors of different specifications can be fixedly installed in the four bearing seats. When installing the sensors, the fixed positions of the sensors can be adjusted according to the sizes of different sensors, so that multiple sensors of different specifications can be fixedly installed on the mounting components at the same time, making it more convenient to assemble sensors based on multi-source data for smart lines;

[0019] 2. By using the rotating mechanism, when the sensor is installed on the bearing seat, the four bearing seats can be moved according to the bearing seat where the sensor needs to be installed, so that the positions of the four bearing seats can be changed at will, which makes the sensor more convenient to install, effectively improves the convenience of sensor installation, and makes the assembly of sensors based on multi-source data for smart lines more convenient and quick;

[0020] 3. By using the pushing mechanism, the waterproof plate and multiple waterproof plugs, it is possible to switch whether the multiple waterproof plugs block the multiple ventilation holes according to the weather conditions. When the multiple waterproof plugs do not block the multiple ventilation holes, the base can be kept ventilated to prevent the ventilation effect in the base from being unsatisfactory and affecting the stability of the rotating mechanism during operation. At the same time, in rainy weather, the multiple waterproof plugs can be blocked in the multiple ventilation holes to prevent rainwater from entering the base through the ventilation holes, thereby avoiding damage to the electrical equipment in the base, thereby improving the stability of the rotating mechanism during operation, making it more convenient and quick to assemble the sensor based on multi-source data for the smart line, and ensuring the stability of the sensor based on multi-source data for the smart line during assembly;

[0021] 4. Through the use of rotating parts, discs, clamping rods and slots, the clamping rod can be inserted into the slot after the sensor is clamped and fixed. Inserting the clamping rod into the slot can prevent the rotating part from rotating. The rotation of the rotating part is restricted, which can limit the rotation of the positive and negative threaded rod. The rotation of the positive and negative threaded rod is restricted, which can keep the two clamps that clamp the sensor stable, thereby improving the stability of the sensor after installation, so that the smart line can keep the sensor based on multi-source data stable after assembly.

[0022] To sum up, the present invention can clamp and fix sensors according to the sizes of the sensors during the assembly process of sensors based on multi-source data for smart circuits, so that sensors of various specifications can be more stably fixed on the mounting components, and sensors of various specifications can be fixed on the mounting components together, thereby realizing the assembly of sensors based on multi-source data for smart circuits, and at the same time ensuring the stability of the various sensors after installation, effectively improving the convenience of assembling sensors based on multi-source data for smart circuits, and ensuring the stability of sensors based on multi-source data for smart circuits after assembly. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 A connection structure diagram of an assembled sensor based on multi-source data for a smart circuit proposed by the present invention;

[0024] Figure 2 A schematic diagram of the internal structure of a support base of an assembled sensor based on multi-source data for a smart circuit proposed by the present invention;

[0025] Figure 3 This is an enlarged view of point A of an assembled sensor based on multi-source data for a smart circuit proposed by the present invention;

[0026] Figure 4 This is an enlarged view of point B of an assembled sensor based on multi-source data for a smart circuit proposed by the present invention;

[0027] Figure 5 This is a schematic diagram of the waterproof board structure of an assembled sensor based on multi-source data for a smart line proposed by the present invention.

[0028] In the figure: 1 base, 2 fixing ring, 3 servo motor, 4 driving bevel gear, 5 transmission bevel gear, 6 driving rod, 7 bearing plate, 8 bearing seat, 9 bearing plate, 10 cross bar, 11 clamp, 12 rubber pad, 13 threaded sleeve, 14 positive and negative threaded rod, 15 rotating part, 16 disc, 17 clamping rod, 18 fixing rod, 19 first spring, 20 connecting block, 21 opening, 22 sliding rod, 23 pulley, 24 circular slide, 25 reinforcement, 26 first screw, 27 expansion bolt, 28 ventilation hole, 29 dustproof net, 30 second screw, 31 cylinder, 32 fixing block, 33 oblique push block, 34 sleeve, 35 vertical rod, 36 oblique pressing block, 37 waterproof plate, 38 sealing pad, 39 waterproof plug, 40 round rod, 41 stopper, 42 main body, 43 second spring. DETAILED DESCRIPTION

[0029] The technical solutions in the embodiments of the present invention will be described clearly and completely below 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, rather than all the embodiments.

[0030] Reference Figure 1-5A multi-source data-based assembled sensor for a smart line includes a base 1. The base 1 is a mounting component for fixing a sensor device based on multi-source data for a smart line when it is in use. Multiple sensor devices of different specifications can be fixedly mounted on the base 1 for use to realize monitoring and collection of multi-source data. A rotating mechanism is provided at the lower end of the base 1. A carrying plate 7 is provided on the rotating mechanism. The carrying plate 7 is arranged at the upper end of the base 1. The carrying plate 7 can be driven to rotate through the operation of the rotating mechanism. The rotating mechanism includes a servo motor 3 fixedly mounted at the lower end of the base 1 through a fixing ring 2. The servo motor 3 is connected to the supporting components for stable operation. The program can be set for automatic operation. The servo motor 3 will be fixed by the fixing ring 2 to keep the servo motor 3 stable during operation. The end of the output shaft of the servo motor 3 is fixedly connected with a driving bevel gear 4. The middle part of the base 1 is rotatably connected with a driving rod 6. The driving rod 6 The upper end passes through the upper end of the base 1 and is fixedly connected to the middle part of the lower end of the carrying plate 7. The lower end of the driving rod 6 is fixedly sleeved with a transmission bevel gear 5, and the transmission bevel gear 5 is meshed with the lower end of one side of the driving bevel gear 4. The operation of the servo motor 3 will drive the driving bevel gear 4 to rotate, and the rotation of the driving bevel gear 4 will push the transmission bevel gear 5 to rotate, and the transmission bevel gear 5 will drive the carrying plate 7 to rotate. Four sliding rods 22 are fixed to the lower end of the carrying plate 7 around, and the lower ends of the four sliding rods 22 are rotatably connected with pulleys 23. A circular slide groove 24 is commonly provided around the upper end of the base 1, and the four pulleys 23 are respectively slidably sleeved in the circular slide groove 24 for a week. The rotation of the carrying plate 7 will drive the four sliding rods 22 and the four pulleys 23 to move, and the four pulleys 23 will slide in the circular slide groove 24. The lower end of the carrying plate 7 will be supported by the four sliding rods 22 and the four pulleys 23 around, so that the carrying plate 7 can keep rotating smoothly during rotation.

[0031] Reference Figure 1 , 2 Four bearing seats 8 are arranged at equal intervals on the upper end of the bearing plate 7, and clamping mechanisms are arranged in the four bearing seats 8. The sensing device can be clamped and fixed in the bearing seats 8 through the clamping mechanism, and the clamping position of the sensing device can be adjusted according to the specifications of the sensing device. Sensor devices of different specifications can be fixed on the bearing plate 7 at the same time through the four bearing seats 8, so that the sensor device based on multi-source data for smart lines can be more convenient to assemble. At the same time, when installing the sensor device, the bearing plate 7 can be driven to rotate, and the four bearing seats 8 can be driven by the bearing plate 7 to exchange positions, so that the four sensing devices can be fixedly installed in the four bearing seats 8 more conveniently and quickly, respectively, which can effectively improve the convenience of assembling the sensor device based on multi-source data for smart lines.

[0032] Reference Figure 1 , 2, a bearing plate 9 is fixed in each of the four bearing seats 8, and a long strip opening is opened on both sides of the four bearing plates 9. Two clamps 11 are symmetrically provided on each of the four clamping mechanisms. The eight clamps 11 are respectively slidably sleeved in the corresponding eight long strip openings. The operation of the clamping mechanism can drive the two clamps 11 to slide in the two long strip openings. The sensing device in the bearing seat 8 can be clamped and fixed by the relative movement of the two clamps 11. Two cross bars 10 are fixed in each of the eight long strip openings. The eight clamps 11 are respectively slidably sleeved on the sixteen cross bars 10. The eight clamps 11 move When the vehicle is in motion, it will slide on the sixteen cross bars 10. The eight clamps 11 can be limited to rotate by sliding on the sixteen cross bars 10, so that the eight clamps 11 can keep moving smoothly. The eight clamps 11 are provided with rubber pads 12 on the opposite sides. The four bearing seats 8 are provided with main bodies 42. The lower ends of the four main bodies 42 are respectively in contact with the upper ends of the four bearing plates 9. The eight rubber pads 12 are respectively in contact with the two sides of the four main bodies 42. The main body 42 is a sensor device based on multi-source data for smart lines. The monitoring data of the main bodies 42 in the four bearing seats 8 are different from each other. The main body 42 is connected with the supporting parts to facilitate stable operation, and the program can be set for automatic operation. The four main bodies 42 can be used to perform multi-source monitoring of the outdoor environment, and the monitored data can be transmitted to the smart route for transmission. The two clamps 11 in the same bearing seat 8 move toward each other to clamp the main body 42 in the bearing seat 8. The positions of the two clamps 11 can be adjusted according to the specifications of the main body 42 in the bearing seat 8, so that the main body 42 can be clamped and fixed more stably. Therefore, four main bodies 42 of different specifications can be fixedly installed through the four clamping mechanisms in the four bearing seats 8, and the four main bodies 42 can be fixedly installed on the base 1 together, realizing the assembly of multi-source data sensing equipment for smart lines, and at the same time, the stability of the main bodies 42 of various specifications after installation can be ensured, which effectively improves the convenience of assembling the multi-source data sensing equipment for smart lines. When the two clamps 11 clamp the main body 42, the friction resistance of the clamps 11 when clamping the main body 42 can be increased by the rubber pads 12, thereby improving the stability of the clamped main body 42.

[0033] Reference Figure 1 , 24. The four clamping mechanisms include four positive and negative threaded rods 14 that are rotatably connected to the four bearing seats 8 respectively. Both sides of the four positive and negative threaded rods 14 are threadedly sleeved with threaded sleeves 13. The eight threaded sleeves 13 are respectively fixedly connected to the lower ends of the corresponding eight clamps 11. The positive and negative threaded rod 14 is a component with opposite threads on both sides. The rotation of the positive and negative threaded rod 14 can push the two matching threaded sleeves 13 to move toward and oppositely. The two threaded sleeves 13 move toward and oppositely, which can drive the two clamps 11 to move toward and oppositely. Therefore, the spacing between the two clamps 11 can be adjusted according to the size of the main body 42, so that the two clamps 11 can clamp and fix the main bodies 42 of different sizes. One end of the four positive and negative threaded rods 14 passes through one side of the four bearing seats 8 respectively and is fixedly connected with a rotating member 15. The rotation of the rotating member 15 can drive the positive and negative threaded rod 14 to rotate, which can be achieved by rotating The moving member 15 allows the staff to control the movement of the two clamps 11 more conveniently. A disk 16 is provided in each of the four rotating members 15. Fixed rods 18 are slidably sleeved on both sides of the four disks 16. The eight fixed rods 18 are fixedly connected to the two sides of the four rotating members 15, respectively. A connecting block 20 is fixed on the other side of the four disks 16. An opening 21 is provided on the other side of the four rotating members 15. The four connecting blocks 20 are respectively penetrated in the corresponding four openings 21. The connecting block 20 in the rotating member 15 can be pulled through the opening 21, and the movement of the connecting block 20 will drive the disk 16 to move. At the same time, the rotation of the connecting block 20 can drive the disk 16 to rotate. The rotation of the disk 16 will cause the rotating member 15 to rotate synchronously through the fixed rod 18. The fixed rod 18 can make the disk 16 move horizontally in the rotating member 15, but the fixed rod 18 will cause the rotating member 15 to rotate when the disk 16 rotates.

[0034] Reference Figure 1 , 24. The eight fixing rods 18 are all sleeved with first springs 19, one end of the eight first springs 19 is respectively fixedly connected to the other side of the corresponding four disks 16, the other end of the eight first springs 19 is respectively fixedly connected to the inner wall of the other side of the four rotating members 15, ten clamping rods 17 are fixed at equal intervals on one side of the four disks 16, forty clamping rods 17 are respectively slidably sleeved on one side of the corresponding four rotating members 15, ten clamping grooves are evenly spaced on one side of the four bearing seats 8, one end of the forty clamping rods 17 are respectively inserted into the corresponding forty clamping grooves, the movement of the disk 16 will drive the matching ten clamping rods 17 to move, when the main body 42 is clamped in the bearing seat 8, it is necessary to pull the disk 16 to move through the connecting block 20, the disk 16 drives the ten clamping rods 17 to move out of the ten clamping grooves, and the ten clamping rods 17 The rotation of the rotating member 15 can be unlimited by moving it out from the ten slots. The rotation of the rotating member 15 can drive the positive and negative threaded rod 14 to rotate. The rotation of the positive and negative threaded rod 14 can drive the two threaded sleeves 13 to move toward each other. The two threaded sleeves 13 drive the two clamps 11 to clamp and fix the main body 42. After the clamping and fixing of the main body 42 is completed, the connecting block 20 is released, and the first spring 19 will drive the disc 16 to move back. The disc 16 will drive the ten clamping rods 17 to enter the corresponding ten slots. The ten clamping rods 17 entering the ten slots will limit the rotation of the rotating member 15. The restricted rotation of the rotating member 15 can limit the rotation of the positive and negative threaded rod 14, thereby limiting the movement of the two clamps 11, so that the two clamps 11 can clamp and fix the main body 42 more stably, which can effectively improve the stability of the main body 42 after installation.

[0035] Reference Figure 1 , 35. A pushing mechanism is provided on both sides of the lower end of the base 1. The pushing mechanism includes two cylinders 31 respectively fixedly installed on both sides of the lower end of the base 1. The telescopic ends of the two cylinders 31 are fixed with fixed blocks 32. The cylinders 31 are connected with supporting parts for stable operation. The program can be set for automatic operation. The operation of the two cylinders 31 will drive the two fixed blocks 32 to rise and fall. The other sides of the two fixed blocks 32 are fixed with oblique pushing blocks 33. Both sides of the two oblique pushing blocks 33 are fixed with sleeves 34. Vertical rods 35 are slidably sleeved in the four sleeves 34. The two ends of the four vertical rods 35 are respectively fixedly connected to the upper and lower ends of the base 1. The two fixed blocks 32 will drive the two oblique pushing blocks 33 to rise and fall. The movable block 33 is raised and lowered, and the lifting and lowering of the two oblique pushing blocks 33 will drive the four sleeves 34 to slide on the four vertical rods 35. The four sleeves 34 sliding on the four vertical rods 35 can make the two oblique pushing blocks 33 maintain the vertical line lifting and lowering during lifting, which can prevent the two oblique pushing blocks 33 from deviating during lifting. An oblique pressing block 36 is correspondingly arranged on the upper side of the other side of the two oblique pushing blocks 33, and a waterproof plate 37 is fixed on the other side of the two oblique pressing blocks 36. The rising of the two oblique pushing blocks 33 will push the two oblique pressing blocks 36, and the two oblique pressing blocks 36 will be pushed to drive the two waterproof plates 37 to move horizontally and linearly, so that the two waterproof plates 37 move in opposite directions.

[0036] Reference Figure 1 , 35. Multiple waterproof plugs 39 are fixed at equal intervals on the other side of the two waterproof plates 37. Multiple ventilation holes 28 are opened at equal intervals on both sides of the base 1. The multiple waterproof plugs 39 are respectively arranged corresponding to the multiple ventilation holes 28. The multiple ventilation holes 28 can keep the base 1 ventilated to prevent the servo motor 3 in the base 1 from generating high temperature during operation and affecting the stability of the servo motor 3 during operation. The opposite movement of the two waterproof plates 37 will drive the multiple waterproof plugs 39 to move in the opposite direction. The multiple waterproof plugs 39 will be inserted into the corresponding multiple ventilation holes 28 for ventilation. The holes 28 are blocked to prevent rainwater from entering the base 1 through the ventilation holes 28, so that the base 1 has a waterproof effect. When it rains, multiple ventilation holes 28 are blocked, and then the servo motor 3 in the base 1 can be prevented from being damaged by water, which can effectively improve the service life of the servo motor 3. The four corners of the two waterproof plates 37 are slidably sleeved with round rods 40, and the other ends of the eight round rods 40 are respectively fixedly connected to the opposite inner walls of the base 1, and the opposite ends of the eight round rods 40 are fixed with stoppers 41, and the eight round rods 40 are sleeved with second springs 4 3. The opposite ends of the eight second springs 43 are respectively fixedly connected to the four corners of the other side of the two waterproof plates 37, and the other ends of the eight second springs 43 are respectively fixedly connected to the opposite inner walls of the base 1. The eight round rods 40 can make the two waterproof plates 37 move in a horizontal route when moving, so that the two waterproof plates 37 can accurately insert the multiple waterproof plugs 39 into the multiple ventilation holes 28 when moving in the opposite direction. The stopper 41 can block one end of the round rod 40 to prevent the waterproof plate 37 from falling off the round rod 40. The second spring 43 has elastic force. When the two oblique pushing blocks 33 do not push or press the two oblique pressing blocks 36, the elastic force of the eight second springs 43 can push the two waterproof plates 37 to move toward each other, and the two waterproof plates 37 will drive the multiple waterproof plugs 39 to move out of the multiple ventilation holes 28. The multiple waterproof plugs 39 moving out of the multiple ventilation holes 28 can prevent the ventilation holes 28 from being blocked, thereby maintaining the ventilation effect in the base 1, and effectively discharging the heat generated by the servo motor 3 during operation from the base 1, thereby effectively improving the stability and service life of the servo motor 3 during operation.

[0037] Reference Figure 1 , 35. A dustproof net 29 is commonly provided on one side of the multiple ventilation holes 28 located on the same side. The two dustproof nets 29 are fixedly connected to the two sides of the base 1 by four second screws 30. The other sides of the two waterproof plates 37 are affixed with sealing gaskets 38. The dustproof nets 29 can be fixed to the base 1 by the second screws 30. The dustproof nets 29 can play a dustproof effect and prevent dust from entering the base 1 through the ventilation holes 28. At the same time, when the two waterproof plates 37 are pushed to move in opposite directions, the two sealing gaskets 38 can be driven to contact the relative inner walls of the base 1. The two sealing gaskets 38 contact the relative inner walls of the base 1 to perform double sealing on the ventilation holes 28, which can effectively prevent water from entering the base 1 through the ventilation holes 28.

[0038] In the present invention, reinforcement pieces 25 are provided at the lower ends of both sides of the base 1, and the four reinforcement pieces 25 are fixedly connected to the base 1 by two first screws 26. Expansion bolts 27 are penetrated on both sides of the four reinforcement pieces 25. The base 1 can be fixed by the four reinforcement pieces 25 and the eight expansion bolts 27, so that the base 1 is more stable after being fixed, and the stability of the base 1 is effectively improved.

[0039] In the present invention, when in use: place the main body 42 in the bearing seat 8, pull the connecting block 20, the connecting block 20 drives the disc 16 to move outward, the disc 16 drives ten clamping rods 17 to move out of the ten clamping grooves, rotate the connecting block 20, the connecting block 20 drives the disc 16 to rotate, the disc 16 drives the two fixed rods 18 to move, the two fixed rods 18 drive the rotating member 15 to rotate, the rotating member 15 drives the positive and negative threaded rods 14 to rotate, the positive and negative threaded rods 14 push the two threaded sleeves 13 to move toward each other, the two threaded sleeves 13 drive the two clamps 11 to move toward each other, the two clamps 11 drive the two rubber pads 12 to clamp and fix the main body 42, and the four main bodies 42 are assembled into the four bearing seats 8 respectively in turn.

[0040] The above description is only a preferred specific implementation manner of the present invention, but the protection scope of the present invention is not limited thereto. Any technician familiar with the technical field can make equivalent replacements or changes according to the technical scheme and inventive concept of the present invention within the technical scope disclosed by the present invention, which should be covered by the protection scope of the present invention.

Claims

1. An assembled sensor based on multi-source data for a smart line, comprising a base (1), characterized in that: A pushing mechanism is provided on both sides of the lower end of the base (1); a rotating mechanism is provided at the lower end of the base (1); a carrying plate (7) is provided on the rotating mechanism; four carrying seats (8) are provided at equal intervals on the upper end of the carrying plate (7); and a clamping mechanism is provided in each of the four carrying seats (8); The bearing plate (7) is arranged at the upper end of the base (1), and a bearing plate (9) is fixed in each of the four bearing seats (8), and long strip openings are opened on both sides of the four bearing plates (9). Two clamps (11) are symmetrically arranged on each of the four clamping mechanisms, and the eight clamps (11) are respectively slidably sleeved in the corresponding eight long strip openings, and two cross bars (10) are fixed in each of the eight long strip openings. The eight clamps (11) are respectively slidably sleeved on sixteen cross bars (10), and rubber pads (12) are arranged on the opposite side of the eight clamps (11). A main body (42) is arranged in each of the four bearing seats (8), and the lower ends of the four main bodies (42) are respectively in contact with the upper ends of the four bearing plates (9), and the eight rubber pads (12) are respectively in contact with the two sides of the four main bodies (42); The four clamping mechanisms include four positive and negative threaded rods (14) rotatably connected to the four bearing seats (8), both sides of the four positive and negative threaded rods (14) are threadedly sleeved with threaded sleeves (13), the eight threaded sleeves (13) are respectively fixedly connected to the lower ends of the corresponding eight clamping members (11), and one end of the four positive and negative threaded rods (14) respectively passes through one side of the four bearing seats (8) and is fixedly connected to a rotating member (15); The pushing mechanism comprises two cylinders (31) respectively fixedly mounted on both sides of the lower end of the base (1); the telescopic ends of the two cylinders (31) are fixed with fixed blocks (32); the other sides of the two fixed blocks (32) are fixed with oblique pushing blocks (33); the other sides of the two oblique pushing blocks (33) are respectively provided with oblique pressing blocks (36); the other sides of the two oblique pressing blocks (36) are fixed with waterproof plates (37); the other sides of the two waterproof plates (37) are evenly spaced with a plurality of waterproof plugs (39); the two sides of the base (1) are evenly spaced with a plurality of ventilation holes (28); the plurality of waterproof plugs (39) are respectively provided corresponding to the plurality of ventilation holes (28); Sleeves (34) are fixed on both sides of the two oblique push blocks (33), vertical rods (35) are slidably sleeved in the four sleeves (34), and the two ends of the four vertical rods (35) are respectively fixedly connected to the upper and lower ends of the base (1); Round rods (40) are slidably sleeved on the four corners of the two waterproof plates (37), the other ends of the eight round rods (40) are respectively fixedly connected to the opposite inner walls of the base (1), the opposite ends of the eight round rods (40) are respectively fixedly connected to the opposite inner walls of the base (1), and the eight round rods (40) are respectively fixedly connected to the opposite ends thereof. Second springs (43) are sleeved on the eight round rods (40), the opposite ends of the eight second springs (43) are respectively fixedly connected to the four corners on the other side of the two waterproof plates (37), and the other ends of the eight second springs (43) are respectively fixedly connected to the opposite inner walls of the base (1).

2. The assembled sensor based on multi-source data for smart circuits according to claim 1 is characterized in that: The four rotating members (15) are each provided with a disk (16), both sides of the four disks (16) are slidably sleeved with a fixing rod (18), the eight fixing rods (18) are respectively fixedly connected to both sides of the four rotating members (15), the other side of the four disks (16) is fixed with a connecting block (20), the other side of the four rotating members (15) is provided with an opening (21), the four connecting blocks (20) are respectively penetrated and arranged in the corresponding four openings (21), the eight fixing rods (18) are sleeved with a first spring (19), the eight first springs (19) are respectively sleeved with the first springs (19), and the eight first springs (19) are respectively sleeved with the first springs (19). One end of the spring (19) is fixedly connected to the other side of the corresponding four disks (16), and the other ends of the eight first springs (19) are fixedly connected to the inner wall of the other side of the four rotating members (15). Ten clamping rods (17) are fixed at equal intervals on one side of the four disks (16), and forty clamping rods (17) are slidably sleeved on one side of the corresponding four rotating members (15). Ten clamping grooves are evenly spaced on one side of the four bearing seats (8), and one end of the forty clamping rods (17) is respectively inserted into the corresponding forty clamping grooves.

3. The assembled sensor based on multi-source data for smart circuits according to claim 1 is characterized in that: The rotating mechanism comprises a servo motor (3) fixedly mounted at the lower end of the base (1) via a fixing ring (2); the output shaft end of the servo motor (3) is fixedly connected to a driving bevel gear (4); the middle part of the base (1) is rotatably connected to a driving rod (6); the upper end of the driving rod (6) passes through the upper end of the base (1) and is fixedly connected to the middle part of the lower end of the carrier plate (7); the lower end of the driving rod (6) is fixedly sleeved with a transmission bevel gear (5); and the transmission bevel gear (5) is meshed with a lower end of one side of the driving bevel gear (4).

4. The assembled sensor based on multi-source data for smart circuits according to claim 1 is characterized in that: Four slide bars (22) are fixed around the lower end of the carrier plate (7), and the lower ends of the four slide bars (22) are rotatably connected to pulleys (23). A circular slide groove (24) is commonly opened around the upper end of the base (1), and the four pulleys (23) are slidably sleeved in the circular slide groove (24) around the circle.

5. The assembled sensor based on multi-source data for smart circuits according to claim 1 is characterized in that: A dustproof net (29) is commonly provided on one side of the plurality of ventilation holes (28) located on the same side, and the two dustproof nets (29) are fixedly connected to the two sides of the base (1) by four second screws (30), and a sealing pad (38) is affixed to the other side of the two waterproof plates (37).

6. The assembled sensor based on multi-source data for smart circuits according to claim 1 is characterized in that: Reinforcements (25) are provided at the lower ends of both sides of the base (1), and the four reinforcements (25) are fixedly connected to the base (1) by two first screws (26). Expansion bolts (27) are provided through both sides of the four reinforcements (25).

Citation Information

Patent Citations

  • Clamping device

    CN101786438A

  • Monitoring method and monitoring system for icing of optical fiber composite overhead ground wire

    CN111668937A