Optical channel module function inspection device and system for optical instrument
By designing an automated optical channel module functional inspection device, the problem of human damage during the light emitting diode detection process in optical instrument production is solved, stable detection and automated material collection are achieved, and detection efficiency and reliability are improved.
Patent Information
- Application Number
- CN202510585701.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-08
- Publication Date
- 2025-07-11
AI Technical Summary
During the production process of optical instruments, the light emitting diode detection of the optical channel module requires manual operation, making it difficult to accurately grasp the strength, which easily leads to damage to the diode pins and causes unnecessary losses.
A functional inspection device for optical channel modules is designed, including a load-bearing workbench, a detection bearing mechanism and a feeding mechanism. Through automatic pushing of components and limit stability mechanisms, the stable detection of light emitting diodes and automatic material collection are realized, reducing human operation.
The stable detection and automatic classification of light emitting diodes are realized, which avoids damage caused by improper human force and improves detection efficiency and reliability.
Smart Images

Figure CN120301508A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of inspection devices, and particularly to a light channel module function inspection device and system for optical instruments. Background Art
[0002] The light channel module of an optical instrument is one of the core components in the optical instrument. The light channel module is a functional module for transmitting and receiving optical signals. It usually includes a transmitting part, a receiving part, and a signal processing part, and can effectively transmit and convert optical signals in the optical instrument.
[0003] Among them, the optical signal transmitting part of the light channel module can convert an electrical signal into an optical signal and emit it. It usually needs to use a light-emitting diode to achieve. During the production and manufacturing process of the optical instrument, it is necessary to detect the light-emitting diode of its optical signal transmitting part before assembling. During the detection process, it is necessary to manually connect the light-emitting diode to the circuit for inspection, and then remove it after the inspection to classify it as good or bad. There are many manual operations in the whole detection process, and it is difficult to accurately master the force of manual operation. Manual operation is prone to damage the pins of the light-emitting diode in a tense working atmosphere, resulting in unnecessary losses. Summary of the Invention
[0004] The purpose of the present invention is to provide a light channel module function inspection device and system for optical instruments to solve the problems raised in the above background art.
[0005] To achieve the above purpose, the present invention provides the following technical solutions: A light channel module function inspection device for an optical instrument includes a carrying workbench. One end of the carrying workbench is fixedly provided with an installation vertical plate. Two sides of the installation vertical plate are symmetrically and fixedly provided with pushing components, and a detection carrying mechanism is also installed on the installation vertical plate; The detection carrying mechanism carries the light-emitting diode to move, and a limiting and stabilizing mechanism is also provided on the detection carrying mechanism. The limiting and stabilizing mechanism is driven by the pushing component, and the limiting and stabilizing mechanism plays a stabilizing role on the light-emitting diode; The other end of the carrying workbench is provided with a detection table and a detection power supply. The detection table is electrically connected to the detection power supply, and the light-emitting diode is electrically detected through the detection table; A receiving mechanism is also installed on the carrying workbench. The receiving mechanism cooperates with the detection carrying mechanism to achieve automatic material separation and collection.
[0006] Preferably, the pushing components are symmetrically arranged on both sides of the installation vertical plate, and the pushing components are support carrier rods; One end of the support carrier rod away from the mounting vertical plate is fixedly provided with a support carrier plate, and driving push rods are symmetrically and fixedly arranged at the upper and lower ends of the support carrier plate.
[0007] Conductive plates are symmetrically and fixedly arranged in the detection groove.
[0008] Preferably, the detection and bearing mechanism includes an electric telescopic rod, a support detection plate and a support movable block. The electric telescopic rod is fixedly installed on the mounting vertical plate, and the support detection plate is fixedly installed on the electric telescopic rod; Cooperating bearing rods are symmetrically and fixedly arranged on both sides of the support detection plate, and a placement load hole is formed on the support detection plate.
[0009] Preferably, first lower bearing plates are symmetrically and fixedly arranged at both ends of the support detection plate, and movable through holes are formed in the first lower bearing plates; Second lower bearing plates are symmetrically and fixedly arranged on both sides of the support detection plate, and moving through holes are formed in the second lower bearing plates.
[0010] Preferably, two support movable blocks are symmetrically arranged at the lower port of the placement load hole. When the support movable blocks are closed together, they support the light-emitting diode, and a pin channel is formed between the two; A bearing insertion rod is fixedly arranged on the support movable block. The bearing insertion rod is inserted into the movable through hole, and a connecting carrier plate is fixedly arranged on the bearing insertion rod; An elastic reset strip is fixedly arranged on the connecting carrier plate, and the other end of the elastic reset strip is fixed on the first lower bearing plate.
[0011] Preferably, connecting carrier rods are symmetrically hinged at both ends of the connecting carrier plate, and the other ends of the connecting carrier rods are hinged with a linkage bearing plate; A cooperating moving rod is fixedly arranged on the linkage bearing plate. The cooperating moving rod is inserted into the moving through hole, and a pushing top plate is also fixedly arranged on the linkage bearing plate.
[0012] Preferably, the limiting and stabilizing mechanism is a movable plate strip. The movable plate strips are symmetrically arranged on both sides of the support detection plate. One end of the support detection plate is fixedly provided with a load-bearing support rod. A support vertical plate is fixedly arranged on the load-bearing support rod, and a limiting baffle is fixedly arranged on the support vertical plate; A cooperating bearing hole is formed in the movable plate strip. A cooperating bearing rod is inserted into the cooperating bearing hole, and a first connecting spring is sleeved on the cooperating bearing rod; A moving channel is also arranged on the movable plate strip. A support carrier rod is inserted into the moving channel, and inclined surface cooperating strips are symmetrically and fixedly arranged on the upper and lower sides of the moving channel.
[0013] Preferably, the material receiving mechanism includes a motor, a material receiving box, and a movable inner bearing plate. The motor is fixedly installed on the loading workbench, and a bearing plate strip is installed on the motor. Push rod bars are fixedly arranged at both ends of the bearing plate strip. Two positioning placement grooves are formed on the loading workbench. The material receiving box is inserted into the positioning placement grooves, and an installation jack is formed at one end of the material receiving box.
[0014] Preferably, the movable inner bearing plate is inserted into the material receiving box. A connecting and matching rod is hinged to the lower end of the movable inner bearing plate, and a movable connecting block is hinged to the lower end of the connecting and matching rod. A plugging movable rod is fixedly arranged on the movable connecting block. The plugging movable rod is inserted into the installation jack. A second connecting spring is sleeved on the plugging movable rod, and a bearing vertical plate is fixedly arranged on the plugging movable rod. A supporting convex rod is fixedly arranged at the upper end of the bearing vertical plate. A loading plate strip is fixedly arranged on the supporting convex rod, and a double-headed inclined panel is fixedly arranged on the loading plate strip.
[0015] An inspection system includes a control module, a detection module, and a communication module. The control module controls the electric telescopic rod to move. The detection module detects the light-emitting diodes connected to the circuit, and transmits the detection data to the control module through the communication module. The control module controls the motor to work, realizes the forward and reverse rotation of the motor, and thus realizes automatic classification and collection.
[0016] Compared with the prior art, the beneficial effects of the present invention are as follows: The structure of the present invention is reasonably arranged and has strong functionality, and has the following advantages: 1. When inspecting the light-emitting diodes, the staff only needs to place them in the placement holes on the support detection plate, and the detection work can be automatically completed without excessive manual operation, which is very convenient and will not cause damage due to excessive manual force, thus well avoiding unnecessary losses.
[0017] 2. After the light-emitting diodes are placed on the support detection plate, the electric telescopic rod drives them to move towards the detection table. As the support detection plate moves, the movable plate strip will move under the cooperation of the driving push rod and the inclined surface matching strip, and then the limit baffle will block above the light-emitting diodes to ensure their stability during the whole detection process. When the light-emitting diodes reach the detection table, their pins will contact the conductive plates in the detection slots, and the light-emitting diodes will be connected to the power supply for detection.
[0018] After the detection module performs the detection, it conveys the detection result to the control module. The control module controls the motor to rotate forward and backward. Under the action of different push bars, it can drive the movable inner bearing plates in different receiving boxes to move upward. At the same time, as the movable inner bearing plate moves upward, when the support detection plate moves in the reverse direction, it will drive the support movable block to move under the action of the double-headed inclined panel, so that the support movable block separates and no longer supports the light-emitting diode, making it fall downward under its own gravity into the receiving box, realizing the automatic separation of good and bad. In addition, the upward movement of the movable inner bearing plate can reduce the falling distance of the light-emitting diode, avoiding a large impact caused by its fall. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 The first perspective schematic diagram of the assembly of the bearing workbench; Figure 2 is Figure 1 the enlarged schematic diagram at A in Figure 3 The second perspective schematic diagram of the assembly of the bearing workbench; Figure 4 is Figure 3 the enlarged schematic diagram at B in Figure 5 The structural schematic diagram of the bearing workbench; Figure 6 The first perspective schematic diagram of the assembly of the support detection plate; Figure 7 The second perspective schematic diagram of the assembly of the support detection plate; Figure 8 is Figure 7 the enlarged schematic diagram at C in Figure 9 The first perspective schematic diagram of the assembly of the receiving box; Figure 10 The second perspective schematic diagram of the assembly of the receiving box; Figure 11 The exploded schematic diagram of the assembly of the receiving box; Figure 12 The schematic diagram of the inspection system.
[0020] In the figure: 1. Load-bearing workbench; 11. Installation vertical plate; 12. Support load rod; 13. Support load plate; 14. Driving push rod; 15. Electric telescopic rod; 16. Positioning placement groove; 17. Detection table; 171. Detection groove; 172. Conductive plate; 18. Detection power supply; 19. Motor; 191. Load-bearing plate strip; 192. Pushing bar; 2. Support detection plate; 21. Matching load-bearing rod; 22. Placement load hole; 23. First lower bearing plate; 24. Movable through hole; 25. Second lower bearing plate; 26. Moving through hole; 3. Support movable block; 31. Pin channel; 32. Load-bearing insertion rod; 33. Connection load plate; 34. Elastic reset strip; 35. Connection load rod; 36. Linkage load-bearing plate; 37. Matching moving rod; 38. Pushing block; 4. Movable plate strip; 41. Load-bearing rod; 42. Support vertical plate; 43. Limit baffle; 44. Matching load-bearing hole; 45. First connection spring; 46. Moving channel; 47. Inclined surface matching strip; 5. Material receiving box; 51. Installation jack; 6. Movable inner bearing plate; 61. Connection matching rod; 62. Movable connection block; 63. Insertion movable rod; 64. Second connection spring; 65. Load-bearing vertical plate; 66. Support convex rod; 67. Load-bearing plate strip; 68. Double-headed inclined surface plate. Detailed implementation manners
[0021] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described with reference to 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. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0022] The present invention provides a technical solution: As Figure 1 and Figure 3 shown, an optical channel module function inspection device for an optical instrument includes a load-bearing workbench 1. One end of the load-bearing workbench 1 is fixedly provided with an installation vertical plate 11. Pushing components are symmetrically and fixedly provided on both sides of the installation vertical plate 11. A detection and bearing mechanism is also installed on the installation vertical plate 11. The detection and bearing mechanism bears a light-emitting diode and moves. A limit and stability mechanism is also provided on the detection and bearing mechanism. The limit and stability mechanism is driven by the pushing component, and the limit and stability mechanism plays a stabilizing role on the light-emitting diode. The other end of the load-bearing workbench 1 is provided with a detection table 17 and a detection power supply 18. The detection table 17 is electrically connected to the detection power supply 18. The light-emitting diode is electrically detected through the detection table 17. A material receiving mechanism is also installed on the load-bearing workbench 1. The material receiving mechanism cooperates with the detection and bearing mechanism to realize automatic material separation and collection.
[0023] As Figure 1 、 Figure 2 andFigure 4 As shown, the pushing components are symmetrically arranged on both sides of the installation vertical plate 11, and the pushing components are supporting carrier rods 12. A supporting carrier plate 13 is fixedly arranged at one end of the supporting carrier rod 12 far from the installation vertical plate 11. Driving push rods 14 are symmetrically and fixedly arranged at the upper and lower ends of the supporting carrier plate 13. The ends of the driving push rods 14 are smooth and free of burrs. Conductive plates 172 are symmetrically and fixedly arranged in the detection groove 171, and the conductive plates 172 are connected to the detection power supply 18 through wires.
[0024] As Figure 1 、 Figure 6 、 Figure 7 and Figure 8 As shown, the detection bearing mechanism includes an electric telescopic rod 15, a supporting detection plate 2 and a supporting movable block 3. The electric telescopic rod 15 is fixedly installed on the installation vertical plate 11, the supporting detection plate 2 is fixedly installed on the electric telescopic rod 15. Matching carrier rods 21 are symmetrically and fixedly arranged on both sides of the supporting detection plate 2, and a placement carrier hole 22 is formed on the supporting detection plate 2. First lower bearing plates 23 are symmetrically and fixedly arranged at both ends of the supporting detection plate 2, and movable through holes 24 are formed in the first lower bearing plates 23. Second lower bearing plates 25 are symmetrically and fixedly arranged on both sides of the supporting detection plate 2, and moving through holes 26 are formed in the second lower bearing plates 25.
[0025] As Figure 8 As shown, two supporting movable blocks 3 are symmetrically arranged at the lower port of the placement carrier hole 22. When the supporting movable blocks 3 are closed together, they support the light-emitting diode, and a pin channel 31 is formed between them. A bearing insertion rod 32 is fixedly arranged on the supporting movable block 3. The bearing insertion rod 32 is inserted into the movable through hole 24, and a connecting carrier plate 33 is fixedly arranged on the bearing insertion rod 32. An elastic reset strip 34 is fixedly arranged on the connecting carrier plate 33. The other end of the elastic reset strip 34 is fixed on the first lower bearing plate 23, and the elastic reset strip 34 can drive the supporting movable block 3 to reset. In addition, when the light-emitting diode is in the placement carrier hole 22, its pins are inserted into the pin channel 31.
[0026] As Figure 8 As shown, connecting carrier rods 35 are symmetrically hinged at both ends of the connecting carrier plate 33. The other ends of the connecting carrier rods 35 are hinged to a linkage bearing plate 36. A matching moving rod 37 is fixedly arranged on the linkage bearing plate 36. The matching moving rod 37 is inserted into the moving through hole 26, and a pushing top plate 38 is also fixedly arranged on the linkage bearing plate 36, and the surface of the pushing top plate 38 is smooth and free of burrs.
[0027] As Figure 6 and Figure 7As shown in the figure, the limiting and stabilizing mechanism is the movable slat 4. The movable slats 4 are symmetrically arranged on both sides of the support and detection plate 2. One end of the support and detection plate 2 is fixedly provided with a load-bearing rod 41. A support vertical plate 42 is fixedly provided on the load-bearing rod 41. A limiting baffle 43 is fixedly provided on the support vertical plate 42. A mating bearing hole 44 is formed on the movable slat 4. A mating bearing rod 21 is inserted into the mating bearing hole 44. A first connecting spring 45 is sleeved on the mating bearing rod 21. The two ends of the first connecting spring 45 are respectively fixed on the support and detection plate 2 and the movable slat 4.
[0028] As Figure 2 shown, a moving channel 46 is further provided on the movable slat 4. A support load rod 12 is inserted into the moving channel 46. The upper and lower sides of the moving channel 46 are symmetrically and fixedly provided with inclined surface mating strips 47. The surfaces of the inclined surface mating strips 47 are smooth and free of burrs.
[0029] As Figure 1 、 Figure 5 and Figure 11 shown, the material receiving mechanism includes a motor 19, a material receiving box 5 and a movable inner bearing plate 6. The motor 19 is fixedly installed on the bearing workbench 1. A bearing strip 191 is installed on the motor 19. Pushing rods 192 are respectively fixedly provided at both ends of the bearing strip 191. Two positioning placement grooves 16 are formed on the bearing workbench 1. The material receiving box 5 is inserted into the positioning placement grooves 16. An installation jack 51 is formed at one end of the material receiving box 5.
[0030] As Figure 9 、 Figure 10 and Figure 11 shown, the movable inner bearing plate 6 is inserted into the material receiving box 5. A connecting and mating rod 61 is hinged at the lower end of the movable inner bearing plate 6. A movable connecting block 62 is hinged at the lower end of the connecting and mating rod 61. A plugging movable rod 63 is fixedly provided on the movable connecting block 62. The plugging movable rod 63 is inserted into the installation jack 51. A second connecting spring 64 is sleeved on the plugging movable rod 63. A bearing vertical plate 65 is fixedly provided on the plugging movable rod 63. A support convex rod 66 is fixedly provided at the upper end of the bearing vertical plate 65. A load-bearing strip 67 is fixedly provided on the support convex rod 66. A double-headed inclined surface plate 68 is fixedly provided on the load-bearing strip 67. In addition, the two ends of the second connecting spring 64 are respectively fixed on the material receiving box 5 and the bearing vertical plate 65. The surface of the double-headed inclined surface plate 68 is smooth and free of burrs.
[0031] As Figure 12 shown, an inspection system includes a control module, a detection module and a communication module. The control module controls the movement of the electric telescopic rod 15. The detection module detects the light-emitting diodes connected to the circuit and transmits the detection data to the control module through the communication module. The control module controls the motor 19 to work, realizes the forward and reverse rotation of the motor 19, and thus realizes automatic classification and collection.
[0032] When performing electrical detection on a light-emitting diode, place it in the placement carrier hole 22, pass its pins through the pin channels 31, and support it through the support movable block 3. The control module controls the electric telescopic rod 15 to extend, driving the support detection plate 2 to move towards the detection table 17. As the support detection plate 2 moves, the inclined surface mating strip 47 on the movable plate strip 4 will contact the driving push rod 14 on the support carrier plate 13. In this way, under the cooperation of the driving push rod 14 and the inclined surface mating strip 47, the movable plate strip 4 will be pushed to move towards the support detection plate 2. As the movable plate strip 4 moves, the limit baffles 43 on the movable plate strip 4 will close together above the light-emitting diode to limit it and ensure its stability during the entire detection process. When the support detection plate 2 drives the light-emitting diode to move to the detection table 17, the pins on the light-emitting diode are inserted into the detection slots 171 and contact the conductive plates 172, thereby connecting the light-emitting diode to the circuit, and the detection module can detect it. After the detection is completed, the control module controls the electric telescopic rod 15 to retract, driving the support detection plate 2 to reset. At the same time, when the detection module detects that the light-emitting diode is good, it will transmit the detection data to the control module, and the control module controls the motor 19 to rotate. In this way, the pushing bar 192 at one end of the carrier plate strip 191 will rotate towards the receiving box 5, thereby pushing the bearing vertical plate 65 on the receiving box 5 close to the detection table 17 to move. Then, with the movement of the bearing vertical plate 65, under the action of the connecting and mating rod 61, the movable inner bearing plate 6 will be pushed to move upward. At the same time, the double-headed inclined surface plate 68 also moves to the working position. In this way, as the support detection plate 2 moves in the reverse direction, when it moves above the receiving box 5 close to the detection table 17, the pushing plate 38 will contact the double-headed inclined surface plate 68. Under the action of the double-headed inclined surface plate 68, the pushing plate 38 will be pushed to move, thereby driving the linkage carrier plate 36 to move. As the linkage carrier plate 36 moves, under the action of the connecting carrier rod 35, the two support movable blocks 3 will move away from each other and separate, no longer being below the placement carrier hole 22. In this way, the light-emitting diode can fall from the placement carrier hole 22 into the receiving box 5 close to the detection table 17 under its own gravity, thus realizing the automatic collection of good light-emitting diodes. As the support detection plate 2 continues to move, under the action of the elastic reset strip 34, the support movable blocks 3 are reset and closed together. At the same time, the control module controls the motor 19 to reset, and the bearing vertical plate 65 is reset under the action of the second connecting spring 64. In addition, when the detection module detects that there is a problem with the light-emitting diode, it will transmit the detection data to the control module, and the control module controls the motor 19 to rotate in the reverse direction. In this way, it will drive the pushing bar 192 at the other end of the carrier plate strip 191 to rotate and contact the bearing vertical plate 65 on the receiving box 5 far from the detection table 17 to drive it to move, and in the same way, it can also drive the movable inner bearing plate 6 inside it to move upward.When the support detection plate 2 drives the light-emitting diode to move above the receiving box 5 away from the detection table 17, it will also drive the pushing plate 38 to move, thereby driving the support movable block 3 to move and separate, so that the problematic light-emitting diodes fall into the receiving box 5 away from the detection table 17 under the action of their own gravity, realizing collection. The whole process requires little manual operation, is very convenient, and well avoids damage caused by human force. In addition, the upward movement of the movable inner bearing plate 6 can reduce the downward movement distance of the light-emitting diode, thereby reducing its falling impact force.
[0033] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An optical channel module function inspection device for an optical instrument, comprising a carrying workbench, characterized in that: One end of the load-bearing workbench is fixedly provided with an installation vertical plate. On both sides of the installation vertical plate, push components are symmetrically and fixedly arranged, and a detection and load-bearing mechanism is also installed on the installation vertical plate; The detection and load-bearing mechanism carries the light-emitting diode to move, and a limit and stability mechanism is also arranged on the detection and load-bearing mechanism. The limit and stability mechanism is driven by the push component, and the limit and stability mechanism plays a stabilizing role on the light-emitting diode; The other end of the load-bearing workbench is provided with a detection table and a detection power supply. The detection table is electrically connected to the detection power supply, and the light-emitting diode is electrically detected through the detection table; A material receiving mechanism is also installed on the load-bearing workbench. The material receiving mechanism cooperates with the detection and load-bearing mechanism to realize automatic material separation and collection.
2. The optical channel module function inspection device for an optical instrument according to claim 1, wherein: The push components are symmetrically arranged on both sides of the installation vertical plate, and the push components are support carrier rods; One end of the support carrier rod far from the installation vertical plate is fixedly provided with a support carrier plate. On the upper and lower ends of the support carrier plate, drive push rods are symmetrically and fixedly arranged; Conductive plates are symmetrically and fixedly arranged in the detection grooves.
3. The optical channel module function inspection device for an optical instrument according to claim 2, characterized in that: The detection and load-bearing mechanism includes an electric telescopic rod, a support detection plate and a support movable block. The electric telescopic rod is fixedly installed on the installation vertical plate, and the support detection plate is fixedly installed on the electric telescopic rod; On both sides of the support detection plate, cooperation carrier rods are symmetrically and fixedly arranged, and a placement carrier hole is opened on the support detection plate; 4. The optical channel module function inspection device for an optical instrument according to claim 3, wherein: At both ends of the support detection plate, first lower bearing plates are symmetrically and fixedly arranged. An activity through hole is opened on the first lower bearing plate; On both sides of the support detection plate, second lower bearing plates are symmetrically and fixedly arranged. A movement through hole is opened on the second lower bearing plate; 5. The optical channel module function inspection device for an optical instrument according to claim 4, characterized in that: At the lower port of the placement carrier hole, two support movable blocks are symmetrically arranged. When the support movable blocks are closed together, they support the light-emitting diode, and a pin channel is formed between the two; A carrier insertion rod is fixedly arranged on the support movable block. The carrier insertion rod is inserted into the activity through hole, and a connection carrier plate is fixedly arranged on the carrier insertion rod; An elastic reset strip is fixedly arranged on the connection carrier plate, and the other end of the elastic reset strip is fixed on the first lower bearing plate.
6. The optical channel module function inspection device for an optical instrument according to claim 5, characterized in that: At both ends of the connection carrier plate, connection carrier rods are symmetrically hinged. The other end of the connection carrier rod is hinged with a linkage carrier plate; A cooperation movement rod is fixedly arranged on the linkage carrier plate. The cooperation movement rod is inserted into the movement through hole, and a push top plate is also fixedly arranged on the linkage carrier plate; 7. The light channel module function inspection device for an optical instrument according to claim 6, characterized in that: The limit and stability mechanism is a movable plate strip. The movable plate strips are symmetrically arranged on both sides of the support detection plate. One end of the support detection plate is fixedly provided with a load-bearing support rod. A support vertical plate is fixedly arranged on the load-bearing support rod, and a limit baffle is fixedly arranged on the support vertical plate; A cooperation bearing hole is opened on the movable plate strip. A cooperation carrier rod is inserted into the cooperation bearing hole, and a first connection spring is sleeved on the cooperation carrier rod; A movement channel is also arranged on the movable plate strip. A support carrier rod is inserted into the movement channel, and inclined surface cooperation strips are symmetrically and fixedly arranged on the upper and lower sides of the movement channel; 8. An optical channel module function inspection device for an optical instrument according to claim 7, characterized in that: The material receiving mechanism includes a motor, a material receiving box and a movable inner bearing plate. The motor is fixedly installed on the load-bearing workbench, and a bearing plate strip is installed on the motor. Push top strip rods are respectively fixedly arranged at both ends of the bearing plate strip; Two positioning and placing grooves are formed in the bearing workbench, the material receiving box is inserted into the positioning and placing grooves, and an installation jack is formed at one end of the material receiving box.
9. The optical channel module function inspection device for an optical instrument according to claim 8, characterized in that: The movable inner bearing plate is inserted into the material receiving box, a connecting and cooperating rod is hinged to the lower end of the movable inner bearing plate, and a movable connecting block is hinged to the lower end of the connecting and cooperating rod; A plugging movable rod is fixedly arranged on the movable connecting block, the plugging movable rod is inserted into the installation jack, a second connecting spring is sleeved on the plugging movable rod, and a bearing vertical plate is fixedly arranged on the plugging movable rod; A supporting convex rod is fixedly arranged at the upper end of the bearing vertical plate, a load-bearing plate strip is fixedly arranged on the supporting convex rod, and a double-headed inclined panel is fixedly arranged on the load-bearing plate strip.
10. An inspection system, characterized in that: This inspection system is applicable to the inspection device described in any one of claims 1-9, and includes a control module, a detection module and a communication module. The control module controls the movement of the electric telescopic rod, the detection module detects the light-emitting diodes connected to the circuit, and conveys the detection data to the control module through the communication module. The control module controls the motor to work, realizes the forward and reverse rotation of the motor, and thus realizes automatic classification and collection.