Electronic component production line remote monitoring device
By setting arc cleaning components and flip avoidance components on the outer wall of the camera, the problem of obstruction of the camera's field of view is solved, and clear monitoring images and stable system operation is achieved, simplifying the structure and extending the service life.
Patent Information
- Application Number
- CN202510785825.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-12
- Publication Date
- 2025-08-01
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In existing remote monitoring devices, the camera's field of view is blocked by a wipe sponge, resulting in problems such as blind spots in monitoring and blurred images.
Arc cleaning components and flip avoidance components are installed on the outer wall of the camera. The drive motor drives the screed arc strip to clean the camera glass cover, and the flip avoidance components prevent the screed arc strip from blocking the field of view in standby state. Combined with the micro switch and magnet repulsion principle, automatic flip and dust prevention are achieved.
It effectively avoids camera field of view obstruction, ensures complete monitoring range, improves image clarity and system stability, simplifies the structure and extends service life.
Smart Images

Figure CN120394415A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of remote monitoring of production lines, and particularly to a remote monitoring device for an electronic component production line. Background Art
[0002] An electronic component production line refers to an automated assembly line used for manufacturing electronic components such as resistors, capacitors, and chips, involving multiple processes such as chip mounting, soldering, and inspection. Installing remote monitoring cameras can achieve real-time supervision of the production process, facilitating managers to keep track of the equipment operation status and personnel operation specifications at any time, improving safety and production efficiency. At the same time, when an abnormality occurs, the problem can be quickly located and processed in a timely manner to ensure product quality. One type of remote monitoring device is a spherical camera.
[0003] The patent document with the patent publication number CN221824914U discloses a remote monitoring device for a production line, including: a mounting plate, etc., fixedly installed at the center of the bottom of the mounting plate. By pulling the limit rod outward, the limit on the slider is released, so that the camera body can be easily disassembled, facilitating the maintenance of the camera body. However, this device has certain defects. The special-shaped rod equipped with a wiping sponge will fit against the outer wall of the glass cover of the camera body whether in the standby state or in the working state, easily blocking part of the camera's field of view, forming a monitoring blind area, resulting in blurred edges of the picture and unclear monitoring images. Summary of the Invention
[0004] The purpose of the present invention is to solve the problem that the patent document with the patent publication number CN221824914U discloses a remote monitoring device for a production line, including: a mounting plate, etc., fixedly installed at the center of the bottom of the mounting plate. By pulling the limit rod outward, the limit on the slider is released, so that the camera body can be easily disassembled, facilitating the maintenance of the camera body. However, this device has certain defects. The special-shaped rod equipped with a wiping sponge will fit against the outer wall of the glass cover of the camera body whether in the standby state or in the working state, easily blocking part of the camera's field of view, forming a monitoring blind area, resulting in blurred edges of the picture and unclear monitoring images, and to propose a remote monitoring device for an electronic component production line.
[0005] In order to achieve the above purpose, the present invention adopts the following technical solutions: A remote monitoring device for an electronic component production line, comprising a mounting base, a controller and a spherical camera. The controller is fixedly arranged at the bottom of the mounting base. A left vertical rod and a right vertical rod are successively and fixedly arranged at the bottom of the controller. A vertical column is fixedly arranged at the bottom of the controller. A spherical camera is fixedly arranged at the bottom of the vertical column. An arc-shaped cleaning component for instantaneously cleaning the glass outer cover of the spherical camera is arranged on the outer wall of the spherical camera. The arc-shaped cleaning component comprises a scale scraping arc bar, a driven disc, a driven bevel gear and a driving motor. A turning and avoiding component for driving the scale scraping arc bar to leave the outer wall of the glass outer cover of the spherical camera to avoid blocking the monitoring line of sight is arranged on the driven disc. The turning and avoiding component comprises a micro electric push rod, a driving ring, a driving rack and a driven gear and a driven column. A closed corrugated cylinder is arranged at the bottom of the mounting base and is used for dust-proofing the scale scraping arc bar in the standby state. A follow-up driving component for driving the closed corrugated cylinder to expand and contract or reset when the scale scraping arc bar turns is arranged on the top of the driven disc. The follow-up driving component comprises a driven magnet, a repulsive electromagnet, a top contact column and a bottom contact column.
[0006] Optionally, the outer wall of the vertical column is rotatably connected with a driven disc. A driven bevel gear is fixedly arranged at the top of the driven disc. A driving motor is fixedly arranged on the side surface of the right vertical rod. A driving bevel gear is fixedly arranged at the output end of the driving motor.
[0007] Optionally, an installation groove is formed at the edge position of the top of the driven disc. A T-shaped groove is formed in the side surface of the installation groove. A horizontal column is rotatably connected to the side surface of the installation groove. An L-shaped rod is fixedly arranged at one end of the horizontal column. An extending arc rod is fixedly arranged at the bottom of the L-shaped rod. The extending arc rod comprises a vertical section and a horizontal section. An arc-shaped rod is fixedly arranged at the end of the horizontal section of the extending arc rod. A scale scraping arc bar is fixedly arranged at the top of the arc-shaped rod. The scale scraping arc bar is attached to the outer wall of the glass outer cover of the spherical camera.
[0008] Optionally, a driven gear is fixedly arranged at one end of the horizontal column on the side surface of the L-shaped rod. A driving rack is stably engaged with the driven gear in the vertical direction. The driving rack is movably inserted into the T-shaped groove. A bottom block is vertically and fixedly arranged on the side surface of the left vertical rod. A micro electric push rod is fixedly arranged at the top of the bottom block. A driving ring is fixedly arranged at the output end of the micro electric push rod.
[0009] Optionally, auxiliary columns are symmetrically and fixedly arranged at the top of the driving ring. The auxiliary columns are movably inserted onto the bottom block. A trigger plate is fixedly arranged on the outer wall of one of the auxiliary columns. A micro switch is fixedly arranged on the left vertical rod above the trigger plate. The micro switch is connected to the power supply wire of the driving motor.
[0010] Optionally, wiring rings are fixedly arranged at the tops of the outer walls of the left vertical rod and the right vertical rod. Wire grooves are formed in the sides of the wiring rings, and the connecting wires between the driving motor and the micro switch are fixed inside the wire grooves.
[0011] Optionally, a driven magnet is fixedly arranged at the bottom of the closed corrugated cylinder. Repelling electromagnets are symmetrically and fixedly arranged at the top of the driven disc. Top contact posts and bottom contact posts are respectively fixedly arranged at the two ends of the power supply wires of the repelling electromagnets, and the top contact posts and the bottom contact posts are fixedly arranged on the sides of the repelling electromagnets.
[0012] Optionally, the top contact posts and the bottom contact posts are vertically distributed. An inner ring is fixedly arranged at the bottom of the driving ring. An inner connecting ring is fixedly arranged at the bottom of the inner ring. An outer ring is fixedly arranged outside the inner ring at the bottom of the driving ring.
[0013] Optionally, an outer connecting ring is fixedly arranged at the bottom of the outer ring. The height of the outer ring is lower than that of the inner ring. The inner connecting ring and the outer connecting ring are made of metal materials. One end of the top contact post contacts with the outer wall of the outer ring or the outer wall of the outer connecting ring, and one end of the bottom contact post contacts with the outer wall of the inner ring or the outer wall of the inner connecting ring.
[0014] Optionally, a driving groove is formed in the side of the driving ring. A driven column is fixedly arranged at the top of the side of the driving rack, and the driven column extends into the driving groove.
[0015] Compared with the prior art, the present invention has the following advantages: (1) An arc-shaped cleaning assembly is arranged on the outer wall of the spherical camera of the present invention. The scale scraping arc bar, which is one of the core components of the arc-shaped cleaning assembly, can clean the glass outer cover of the spherical camera driven by the driving motor. A flipping and avoiding assembly is arranged on the side of the arc-shaped cleaning assembly. When the scale scraping arc bar is on standby, the flipping and avoiding assembly can drive the scale scraping arc bar to flip to a certain position and move away from the glass outer cover of the spherical camera, and can flip the scale scraping arc bar to the avoiding position in the standby state, effectively avoiding the scale scraping arc bar from blocking the camera vision, ensuring that the lens has a complete shooting angle and monitoring range, helping to improve the accuracy of remote monitoring and the image coverage effect, and ensuring the stable operation of the monitoring system.
[0016] 2. The flipping and avoiding component of the present invention has certain characteristics. No matter where the driving motor of one of the arc-shaped cleaning components drives the scale scraping arc bar to rotate, the flipping and avoiding component will drive the scale scraping arc bar to flip and avoid to a position that does not obstruct the imaging angle and monitoring range of the spherical camera. And the power source of the flipping and avoiding component is fixed, and it can achieve synchronous flipping and avoiding without relying on the rotation position of the scale scraping arc bar itself, solving the problem of power source wiring for the flipping and avoiding component, without moving along with the rotation of the scale scraping arc bar, effectively solving the problems of power source power supply and wiring. This design avoids problems such as wire entanglement, wear or breakage caused by the rotation of the scale scraping arc bar, simplifies the overall structure of the machine, and has the advantages of simple structure and precise control.
[0017] 3. The present invention sets a microswitch near the power source output end of the flipping and avoiding component and connects it in series to the driving motor in the arc-shaped cleaning component, which has the control advantage of limiting linkage. When the flipping and avoiding component starts to flip the scale scraping arc bar, the microswitch automatically disconnects the driving motor circuit, avoiding the scale scraping arc bar from being misdriven to rotate during the flipping process, thereby preventing mechanical interference, conflict or damage between the cleaning component and the avoiding mechanism. This design improves the safety and coordination of the system operation, and ensures the structural integrity and long-term stable operation of the device.
[0018] 4. The present invention is provided with a closed corrugated cylinder on the top of the spherical camera. When the scale scraping arc bar cleans the glass outer cover of the spherical camera, the closed corrugated cylinder will be in a contracted state due to the principle of magnet repulsion. When the scale scraping arc bar is ready to standby and is flipped to the standby position by the flipping and avoiding component, the follow-up driving component arranged above the flipping and avoiding component will automatically cut off the power supply, stop repelling the bottom of the closed corrugated cylinder, and the closed corrugated cylinder will automatically drop down to wrap the scale scraping arc bar, effectively protecting the cleaning component from being eroded by external factors such as dust in the non-working state, extending the service life, and enhancing the overall stability and environmental adaptability of the system. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 It is a schematic diagram of the overall structure of the present invention.
[0020] Figure 2 It is Figure 1 a schematic diagram of the structure from another perspective.
[0021] Figure 3 It is Figure 1 a schematic diagram of the structure for removing the closed corrugated cylinder.
[0022] Figure 4 It is a schematic diagram of the structure of the flipping and avoiding component and its connecting parts.
[0023] Figure 5 It is a schematic diagram of the structure of the follow-up driving component.
[0024] Figure 6 It is a structural schematic diagram of an auxiliary column and its connecting member.
[0025] Figure 7 It is a structural schematic diagram of the flipping avoidance assembly installed on the driven disk.
[0026] Figure 8 It is a structural schematic diagram of the driven disk and its connecting member.
[0027] Figure 9 It is a structural schematic diagram of the flipping avoidance assembly.
[0028] Figure 10 It is a structural schematic diagram of some components of the follow-up drive assembly.
[0029] In the figure: 1, mounting seat; 2, closed corrugated cylinder; 3, driven magnet; 4, vertical column; 5, drive motor; 51, driving bevel gear; 6, spherical camera; 7, controller; 8, wiring ring; 81, wire groove; 9, right vertical rod; 10, left vertical rod; 100, bottom block; 11, driven disk; 110, mounting groove; 1101, T-shaped groove; 12, repulsion electromagnet; 121, top contact column; 122, bottom contact column; 13, auxiliary column; 14, micro electric push rod; 15, driving ring; 151, driving groove; 16, trigger plate; 17, micro switch; 18, driven bevel gear; 19, driven column; 20, driving tooth bar; 21, driven gear; 22, horizontal column; 23, L-shaped rod; 24, extending arc rod; 25, arc rod; 251, dirt scraping arc strip; 26, inner ring; 27, inner connecting ring; 28, outer ring; 29, outer connecting ring. Specific embodiments
[0030] 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.
[0031] In the description of the present invention, it should be understood that the orientation or positional relationship indicated by the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the accompanying drawings, and is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present invention.
[0032] Refer to Figure 1-10A remote monitoring device for an electronic component production line includes a mounting base 1, a controller 7, and a spherical camera 6. The controller 7 is fixedly arranged at the bottom of the mounting base 1, and a left vertical rod 10 and a right vertical rod 9 are fixedly arranged at the bottom of the controller 7 in sequence. A vertical column 4 is fixedly arranged at the bottom of the controller 7, and a spherical camera 6 is fixedly arranged at the bottom of the vertical column 4. The model of the controller 7 is DS-1600KI, which supports the spherical camera 6 and the remote monitoring host to remotely monitor the electronic component production line in real time through wireless or wired means.
[0033] The outer wall of the spherical camera 6 is provided with an arc-shaped cleaning component for instantly cleaning the glass cover of the spherical camera 6. The arc-shaped cleaning component includes a scraping arc strip 251, a driven disk 11, a driven bevel gear 18, and a driving motor 5. The outer wall of the vertical column 4 is rotatably connected to the driven disk 11. The driven bevel gear 18 is fixedly provided on the top of the driven disk 11. The driving motor 5 is fixedly provided on the side of the right vertical rod 9. The output end of the driving motor 5 is fixedly provided with a driving bevel gear 51. The driving bevel gear 51 is meshed with the driven bevel gear 18. The pitch circle diameter of the driving bevel gear 51 is set smaller than the pitch circle diameter of the driven bevel gear 18. Therefore, the driving motor 5 can slowly drive the scraping arc strip 251 to rotate slowly through the driving bevel gear 51 and the driven bevel gear 18. In addition, the diameter of the driven disk 11 needs to be set larger than the diameter of the wiring ring 8 and the driving ring 15 to avoid the scraping arc strip 251. When the scraping arc strip 251 rotates, the parts directly connected to the scraping arc strip 251 collide with the driving motor 5.
[0034] A mounting groove 110 is provided at the top edge of the driven disk 11, and a T-shaped groove 1101 is provided on the side of the mounting groove 110. A horizontal column 22 is rotatably connected to the side of the mounting groove 110, and an L-shaped rod 23 is fixedly provided at one end of the horizontal column 22. An extended arc rod 24 is fixedly provided at the bottom of the L-shaped rod 23. The extended arc rod 24 includes a vertical section and a horizontal section. An arc rod 25 is fixedly provided at the end of the horizontal section of the extended arc rod 24, and a scraping arc strip 251 is fixedly provided on the top of the arc rod 25. The scraping arc strip 251 is attached to the outer wall of the glass cover of the spherical camera 6. The scraping arc strip 251 is made of soft rubber material to prevent the scraping arc strip 251 from scratching the glass cover when moving along the outer wall of the glass cover of the spherical camera 6.
[0035] The driven disk 11 is provided with a flip avoidance component that drives the scraping arc strip 251 away from the outer wall of the glass cover of the spherical camera 6 to avoid blocking the monitoring line of sight. The flip avoidance component includes a micro electric push rod 14, an active ring 15, an active gear rod 20, a driven gear 21, and a driven column 19.
[0036] A closed corrugated cylinder 2 is provided at the bottom of the mounting base 1. The closed corrugated cylinder 2 is used to block dust from the scaling arc bar 251 in the standby state. A follow-up drive assembly is provided at the top of the driven disk 11 to drive the telescoping or resetting of the closed corrugated cylinder 2 when the scaling arc bar 251 flips. The follow-up drive assembly includes a driven magnet 3, a repelling electromagnet 12, a top contact post 121, and a bottom contact post 122.
[0037] A driven gear 21 is fixedly provided at one end of the side of the horizontal post 22 on the side of the L-shaped rod 23. The driven gear 21 is stably meshed with a driving tooth rod 20 in the vertical direction. The shape of the L-shaped rod 23 is set to accommodate the driven gear 21, and the diameter of the driven gear 21 is set to be large enough so that when the scaling arc bar 251 flips to the vertical state, the extending arc rod 24 will not collide with the driving tooth rod 20 vertically. The driving tooth rod 20 is movably inserted into the T-shaped groove 1101. The thickness of the T-shaped groove 1101 is set appropriately to restrict the stable movement of the driving tooth rod 20 in the vertical direction. A bottom block 100 is fixedly provided perpendicularly on the side of the left vertical rod 10. A micro electric push rod 14 is fixedly provided on the top of the bottom block 100, and the output end of the micro electric push rod 14 faces downward.
[0038] An active ring 15 is fixedly provided at the output end of the micro electric push rod 14. The active ring 15 is sleeved on the outer wall of the vertical column 4. A driving groove 151 is provided on the side of the active ring 15. A driven column 19 is fixedly provided at the top of the side of the driving tooth rod 20. The driven column 19 extends into the driving groove 151. The height of the driving groove 151 needs to be set appropriately. The diameter of the driven column 19 is the same as the height of the driving groove 151. The inside of the driving groove 151 is polished into a smooth surface, and the driven column 19 is hardened.
[0039] Auxiliary columns 13 are symmetrically and fixedly provided at the top of the active ring 15. The auxiliary columns 13 are movably inserted into the bottom block 100. There are two auxiliary columns 13 in total. The two auxiliary columns 13 assist the active ring 15 to move stably in the vertical direction driven by the micro electric push rod 14. A trigger plate 16 is fixedly provided on the outer wall of one of the auxiliary columns 13. A micro switch 17 is fixedly provided on the left vertical rod 10 above the trigger plate 16. The trigger plate 16 and the micro switch 17 are vertically distributed. When the electric push rod 14 extends, it will drive the position of the driven column 19 through the active ring 15, and the driving tooth rod 20 drives the driven gear 21 to flip, thereby driving the scaling arc bar 251 away from the outer wall of the spherical camera to avoid blocking the monitoring line of sight of the spherical camera.
[0040] The trigger button of the micro switch 17 faces vertically downward. When the trigger plate 16 moves upward to the extreme position, the trigger plate 16 contacts the bottom of the micro switch 17, triggering the micro switch 17. The micro switch 17 is connected to the power supply line of the drive motor 5. At the top of the outer walls of the left vertical rod 10 and the right vertical rod 9, wiring rings 8 are fixedly arranged. A wire groove 81 is formed on the side of the wiring ring 8. There are two wiring rings 8 in total. The connection line between the drive motor 5 and the micro switch 17 is fixed inside the wire groove 81, and the connection line between the drive motor 5 and the micro switch 17 can be fixed inside the wire groove 81 with glue.
[0041] At the bottom of the closed corrugated cylinder 2, a driven magnet 3 is fixedly arranged. At the top of the driven disk 11, repulsion electromagnets 12 are symmetrically and fixedly arranged. At both ends of the power supply line of the repulsion electromagnet 12, a top contact post 121 and a bottom contact post 122 are respectively fixedly arranged. The top contact post 121 and the bottom contact post 122 are fixedly arranged on the side of the repulsion electromagnet 12. The electromagnetic pole direction of the repulsion electromagnet 12 needs to be set appropriately. When the repulsion electromagnet 12 is powered on, the repulsion electromagnet 12 will repel the driven magnet 3, and the driven magnet 3 drives the closed corrugated cylinder 2 to automatically contract. After the scraping arc strip 251 is ready to flip to the vertical state, the closed corrugated cylinder 2 can be lowered to perform dust-proof treatment on the scraping arc strip 251.
[0042] The top contact post 121 and the bottom contact post 122 are vertically distributed. At the bottom of the driving ring 15, an inner ring 26 is fixedly arranged. At the bottom of the inner ring 26, an inner connection ring 27 is fixedly arranged. Outside the inner ring 26 at the bottom of the driving ring 15, an outer ring 28 is fixedly arranged. At the bottom of the outer ring 28, an outer connection ring 29 is fixedly arranged. The height of the outer ring 28 is lower than the height of the inner ring 26. The inner connection ring 27 and the outer connection ring 29 are made of metal materials. At the top of the inner connection ring 27 and the outer connection ring 29, electric connection columns can be connected by welding to access an external power supply. One end of the top contact post 121 contacts the outer wall of the outer ring 28 or the outer wall of the outer connection ring 29, and one end of the bottom contact post 122 contacts the outer wall of the inner ring 26 or the outer wall of the inner connection ring 27.
[0043] The specific implementation steps and principles of the present invention are as follows: When the scraping arc strip 251 fits against the outer wall of the spherical camera 6, at this time, the top contact post 121 contacts the outer connection ring 29, and the bottom contact post 122 contacts the inner connection ring 27. At this time, the repulsion electromagnet 12 is powered on, repelling the driven magnet 3 at the bottom of the closed corrugated cylinder 2. The closed corrugated cylinder 2 is compressed. When the trigger plate 16 presses against the micro switch 17, at this time, the drive motor 5 can be powered on. The drive motor 5 drives all the components on the driven disk 11 to rotate through the driving bevel gear 51 and the driven bevel gear 18, and the scraping arc strip 251 scrapes the dust on the outer wall of the spherical camera 6.
[0044] When the scale scraping arc bar 251 needs to standby, the micro electric push rod 14 drives the active ring 15 to move downward. The active ring 15 drives the active tooth bar 20 to move downward through the drive slot 151 and the driven column 19. The active tooth bar 20 drives the driven gear 21 to turn over. The driven gear 21 drives the scale scraping arc bar 251 on the arc bar 25 to gradually turn over upward. During this process, the trigger plate 16 is separated from the micro switch 17, the drive motor 5 is powered off, the external connection ring 29 and the internal connection ring 27 move downward, the top contact column 121 is separated from the external connection ring 29, and the bottom contact column 122 is separated from the internal connection ring 27. At this time, the driven magnet 3 at the bottom of the closed corrugated cylinder 2 is no longer repelled. The driven magnet 3 drives the closed corrugated cylinder 2 to expand and contract due to its own weight, wrapping the scale scraping arc bar 251.
[0045] The above is only the preferred specific implementation manner of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution and inventive concept of the present invention, makes equivalent substitutions or changes, and should be covered by the protection scope of the present invention.
Claims
1. A remote monitoring device for an electronic component production line, comprising a mounting base, a controller and a spherical camera. The controller is fixedly arranged at the bottom of the mounting base. A vertical column is fixedly arranged at the bottom of the controller, and a spherical camera is fixedly arranged at the bottom of the vertical column. It is characterized in that, An arc-shaped cleaning component for instantaneously cleaning the glass outer cover of the spherical camera is provided on the outer wall of the spherical camera; The arc-shaped cleaning component rotates along a fixed circular track on the glass outer cover of the spherical camera, and the scale scraping arc bar in the arc-shaped cleaning component contacts the glass outer cover of the spherical camera; The arc-shaped cleaning component is provided with a flipping and avoiding component. When the scale scraping arc bar rotates around the glass outer cover of the spherical camera, the flipping and avoiding component drives the flipping action of the scale scraping arc bar, and the scale scraping arc bar leaves the glass outer cover of the spherical camera; A closed corrugated cylinder is provided at the bottom of the mounting base, and a follow-up driving component is provided at the bottom of the closed cylinder. When the flipping and avoiding component drives the scale scraping arc bar to flip, the closed corrugated cylinder is automatically contracted under the control of the follow-up driving component.
2. The remote monitoring device for an electronic component production line according to claim 1, characterized in that, A driven disk is rotatably connected to the outer wall of the vertical column. A driven bevel gear is fixedly arranged at the top of the driven disk. A left vertical rod and a right vertical rod are sequentially and fixedly arranged at the bottom of the controller. A driving motor is fixedly arranged on the side of the right vertical rod. A driving bevel gear is fixedly arranged at the output end of the driving motor. The driven disk is rotatably arranged on the outer wall of the vertical column, and the output end of the driving motor is perpendicular to the vertical axis of the vertical column.
3. An electronic component production line remote monitoring device according to claim 1, characterized in that, An installation groove is formed at the edge position at the top of the driven disk. A T-shaped groove is formed on the side of the installation groove. A horizontal column is rotatably connected to the side of the installation groove. One end of the horizontal column is fixedly provided with an L-shaped rod. An extending arc bar is fixedly arranged at the bottom of the L-shaped rod. The extending arc bar includes a vertical section and a horizontal section. An arc-shaped rod is fixedly arranged at the end of the horizontal section of the extending arc bar. A scale scraping arc bar is fixedly arranged at the top of the arc-shaped rod. The scale scraping arc bar fits onto the outer wall of the glass outer cover of the spherical camera.
4. An electronic component production line remote monitoring device according to claim 3, characterized in that, The flipping and avoiding component includes a micro electric push rod, a driving ring, a driving tooth bar and a driven gear. A driven gear is fixedly arranged at one end of the horizontal column on the side of the L-shaped rod. The driven gear is stably engaged with the driving tooth bar in the vertical direction. The driving tooth bar is movably inserted into the T-shaped groove.
5. The remote monitoring device for an electronic component production line according to claim 4, wherein, A bottom block is vertically and fixedly arranged on the side of the left vertical rod. A micro electric push rod is fixedly arranged at the top of the bottom block. A driving ring is fixedly arranged at the output end of the micro electric push rod. Auxiliary columns are symmetrically fixedly arranged at the top of the driving ring. The auxiliary columns are movably inserted onto the bottom block. A trigger plate is fixedly arranged on the outer wall of one of the auxiliary columns. A micro switch is fixedly arranged on the left vertical rod above the trigger plate. The micro switch is connected to the power supply wire of the driving motor.
6. The remote monitoring device for an electronic component production line according to claim 1, characterized in that, Wiring rings are fixedly arranged at the top of the outer walls of the left vertical rod and the right vertical rod. A wire groove is formed on the side of the wiring ring. The connecting wire between the driving motor and the micro switch is fixed inside the wire groove.
7. An electronic component production line remote monitoring device according to claim 1, characterized in that, The follow-up driving component includes a driven magnet, a repulsive electromagnet, a top contact column and a bottom contact column. A driven magnet is fixedly arranged at the bottom of the closed corrugated cylinder. Repulsive electromagnets are symmetrically fixedly arranged at the top of the driven disk. The power supply wires of the repulsive electromagnets are respectively fixedly provided with a top contact column and a bottom contact column at both ends. The top contact column and the bottom contact column are fixedly arranged on the side of the repulsive electromagnet.
8. An electronic component production line remote monitoring device according to claim 7, characterized in that, The top contact column and the bottom contact column are vertically distributed. An inner ring is fixedly arranged at the bottom of the driving ring. An inner connecting ring is fixedly arranged at the bottom of the inner ring. An outer ring is fixedly arranged outside the inner ring at the bottom of the driving ring.
9. The remote monitoring device for an electronic component production line according to claim 8, characterized in that, An external connection ring is fixedly arranged at the bottom of the external ring. The height of the external ring is lower than that of the internal ring. The internal connection ring and the external connection ring are made of metal. One end of the top connection column contacts the outer wall of the external ring or the outer wall of the external connection ring, and one end of the bottom connection column contacts the outer wall of the internal ring or the outer wall of the internal connection ring.
10. The remote monitoring device for an electronic component production line according to claim 4, characterized in that, A driving groove is formed on the side surface of the active ring. A driven column is fixedly arranged at the top of the side surface of the active tooth bar, and the driven column extends into the driving groove.
Citation Information
Patent Citations
Remote monitoring device for production line
CN221824914U
Cited By
Smart campus safety monitoring device and method
CN120897112A