Optical module detection device and system in production system
By designing an automatic loading and unloading detection mechanism and using an electric telescopic rod and a robotic arm to achieve automatic plug-in and connection, the problems of low efficiency and unstable quality caused by the dependence of manual operation of existing optical module detection devices are solved, and the automation and efficiency of optical module detection are realized.
Patent Information
- Application Number
- CN202510421142.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-07
- Publication Date
- 2025-05-06
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing optical module detection devices rely on manual operation, have low efficiency and unstable quality, and cannot realize automatic loading and unplugging of fiber optic heads, resulting in large working strength and low detection efficiency.
An optical module detection device including a detection base, a material storage barrel, a material feeding hollow table, a material feeding bearing plate and a robot arm is designed. The automatic storage, loading, detecting and unloading of the optical module is realized through the automatic loading and unloading detection mechanism, and the automatic plug-in of the optical fiber plug and the automatic connection of the optical module and the switch are realized by using an electric telescopic rod and the robot arm.
The automation of optical module detection is realized, the detection efficiency is improved, the work intensity of staff is reduced, and the detection quality is improved.
Smart Images

Figure CN119945540A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of detection devices, and in particular to an optical module detection device and system in a production system. Background Art
[0002] The optical module is an optoelectronic device that performs photoelectric and electro-optical conversion. The transmitting end of the optical module converts the electrical signal into an optical signal, and the receiving end converts the optical signal into an electrical signal. In the backbone network of the optical fiber network, in the existing optical module detection process, the optical module to be detected is placed at the inspection station, and the person manually wears anti-static gloves and anti-static wristbands, and then grabs the optical module. During the grabbing process, the optical module must be prevented from being bumped, especially the gold finger of the optical module must not be touched. The optical fiber jumper is manually inserted into the module of the optical module, and then the head of the optical module is inserted into the designated jack of the switch to detect the optical module. The existing optical module detection device generally adopts manual loading and unloading, and manually detects the optical module, which limits the detection efficiency. On the other hand, manual operation has many uncertain factors, which has a great impact on the detection quality, and at the same time makes the work intensity of the staff greater. It is impossible to realize automatic loading and unloading, and automatically plug and unplug the optical fiber head to reduce the work intensity of the staff while improving the detection work efficiency. Summary of the invention
[0003] The object of the present invention is to provide an optical module detection device and system in a production system to solve the problems raised in the above background technology.
[0004] To achieve the above object, the present invention provides the following technical solutions: A light module detection device in a production system comprises a detection base, one end of the detection base is fixedly provided with a first epitaxial convex plate, the first epitaxial convex plate is fixedly mounted with an electric telescopic rod, one end of the detection base close to the first epitaxial convex plate is fixedly provided with a supporting sleeve, the detection base between the supporting sleeves is symmetrically fixedly provided with a bearing vertical plate, the bearing vertical plate is fixedly provided with a supporting rail, one end of the support rail is provided with an upward inclined plane, the support rail at the lower side of the upward inclined plane is fixedly provided with a supporting slat, the support slat is provided with a lower driving inclined slat, the other end of the detection base is fixedly provided with a second epitaxial convex plate, the second epitaxial convex plate is fixedly provided with a mounting top plate, the mounting top plate is fixedly mounted with a switch, a mechanical arm is installed on one side of the detection base, a suction cup is installed on the mechanical arm, and an automatic loading and unloading detection mechanism is provided on the detection base.
[0005] Preferably, the automatic loading and unloading detection mechanism includes a material storage barrel, a hollow feeding platform, a feeding supporting plate, a movable carrying bar, a movable carrying plate, a limit baffle and a movable carrying plate. The material storage barrel is installed at one end of the detection base, and side supporting bottom plates are symmetrically fixed on both sides of the lower end of the material storage barrel. Positioning pins are fixed on the side supporting bottom plates, and the positioning pins are inserted in the supporting sleeve.
[0006] Preferably, a bearing end plate is fixedly provided at one end of the material storage barrel, a movable fitting hole is opened on the bearing end plate, and a blocking bearing plate is installed on the bearing end plate, a movable fitting rod is fixedly provided on the blocking bearing plate, the movable fitting rod is inserted in the movable fitting hole, and a first spring is sleeved on the movable fitting rod.
[0007] Preferably, the hollow feeding table is fixedly mounted on the electric telescopic rod, an inner support rod is fixedly arranged inside the hollow feeding table, and a through hole is opened on the hollow feeding table, a through channel is opened on the hollow feeding table at the lower side of the through hole, bearing columns are symmetrically fixedly arranged on both sides of the hollow feeding table, guide matching holes are opened on the bearing columns, and matching cross beams are fixedly arranged between the bearing columns, a supporting base plate is also fixedly arranged at the lower end of the hollow feeding table, and mounting poles are symmetrically fixedly arranged on both sides of the supporting base plate.
[0008] Preferably, a feeding supporting plate is installed on the feeding hollow table, and guide mounting rods are symmetrically fixed on both sides of the feeding supporting plate at one end close to the feeding hollow table, and the guide mounting rods are inserted into the guide matching holes, and moving channels are symmetrically arranged on both sides of the feeding supporting plate, matching convex plates are symmetrically fixed on both sides of the moving channels, and matching supporting rods are fixed on the matching convex plates.
[0009] Preferably, side support frames are symmetrically fixed on both sides of the feeding carrier plate, a first rotating wheel is installed on the side support frame, a matching column is fixedly provided on the lower end of the feeding carrier plate, and a plug-in hole is provided on the feeding carrier plate, the plug-in hole passes through the matching column, and a connecting through hole is provided at the bottom of the plug-in hole, matching connecting rods are symmetrically hinged on both sides of one end of the feeding carrier plate away from the feeding hollow platform, and a movable carrying bar is hinged at the lower end of the matching connecting rod.
[0010] Preferably, a connecting plate is fixedly provided at one end of the movable carrier bar, and the connecting plate is hinged to the matching connecting rod, and a movable bearing hole is provided at the other end of the movable carrier bar, and a matching crossbeam is inserted in the movable bearing hole, and a connecting socket is also provided on the movable carrier bar, and a connecting plug rod is inserted in the connecting socket, and a push-up limit block is fixedly provided on the upper end of the connecting plug rod, and a supporting connecting plate is symmetrically fixed on the pushing-up limit block, and a matching sleeve hole is provided on the supporting connecting plate, and a matching sleeve hole is inserted in the matching bearing rod.
[0011] Preferably, a movable carrier plate is installed at the lower end of the feeding carrier plate, matching blocks are symmetrically fixed on both sides of the movable carrier plate, and a connecting matching rod is fixedly provided on the movable carrier plate, the connecting matching rod passes through the connecting through hole and is inserted in the plug-in hole, a second spring is sleeved on the connecting matching rod, and a movable plug plate is fixedly provided on the upper end of the connecting matching rod, and the movable plug plate is inserted in the plug-in hole.
[0012] Preferably, a limit baffle is installed on the support base plate, and an installation through hole is symmetrically provided on the limit baffle, and an installation vertical rod is inserted in the installation through hole, and a third spring is sleeved on the installation vertical rod, and mounting brackets are symmetrically fixedly provided on both sides of the limit baffle, and a second rotating wheel is installed on the mounting bracket, and a matching connecting plate is also symmetrically fixedly provided on the limit baffle, and the matching connecting plate is inserted in the feeding hollow table through the channel, and the upper end of the matching connecting plate is hinged with a movable hinge rod, and the lower end of the movable hinge rod is hinged with a movable bearing plate, and the movable bearing plate is located in the feeding hollow table, and connecting side plates are symmetrically fixedly provided on both sides of the lower end of the movable bearing plate, and the connecting side plates are hinged with the movable hinge rod, and a movable sleeve hole is provided at the lower end of the movable bearing plate, and an inner support rod is inserted in the movable sleeve hole, and a bearing protrusion is fixedly provided on the upper end of the movable bearing plate, and an optical fiber plug is fixedly installed on the bearing protrusion.
[0013] An optical module detection system comprises a control module, a force control monitoring module, a detection module and a communication module. The control module controls the movement of an electric telescopic rod and a mechanical arm, and the communication module realizes communication among the control module, the force control monitoring module and the detection module.
[0014] Compared with the prior art, the invention has the following advantages: 1. A material storage barrel, a hollow feeding table and a robotic arm are provided on the detection base. When the optical module is tested, it is stored in the material storage barrel. Automatic loading can be achieved under the action of the hollow feeding table, and the automatic insertion of the optical fiber plug and the automatic connection of the optical module and the switch can be achieved. After the test is completed, the optical module can be automatically unloaded under the action of the suction cup on the robotic arm, which is very convenient. It not only improves the efficiency of the test work, but also greatly reduces the workload of the staff.
[0015] 2. When loading, the electric telescopic rod drives the feeding carrier plate to move to the bottom of the storage barrel, so that the optical module falls onto the feeding carrier plate under the action of its own gravity, and then is moved away. During the transfer process, as the first rotating wheel separates from the supporting rail, the feeding carrier plate moves downward under the action of its own gravity, thereby driving the push-up limit block to move in the direction of the optical module. While adjusting the position of the optical module, it is limited so that it maintains an accurate position during the movement, and finally moves to the switch and can be smoothly plugged into the socket on the switch.
[0016] 3. In addition, when the feeding carrier plate drives the optical module to move, the lower driving inclined panel strip will drive the limit baffle plate to move downward so that it no longer limits the optical module. At the same time, it will also drive the movable carrier plate to move downward, and then under the action of the movable plug plate, negative pressure can be formed in the plug-in hole to firmly fix the optical module on the feeding carrier plate, and the downward movement of the limit baffle plate will also drive the movable carrier plate to move, so that the optical fiber plug on the movable carrier plate can be plugged into the optical module. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 This is a schematic diagram of the assembly of the detection base.
[0018] Figure 2 for Figure 1 A magnified schematic diagram of center A.
[0019] Figure 3 Schematic diagram of the structure of the detection base.
[0020] Figure 4 Schematic diagram of the first view of the storage cartridge assembly.
[0021] Figure 5 A second perspective diagram of the stock cartridge assembly.
[0022] Figure 6 This is the assembly diagram of the feeding hollow table.
[0023] Figure 7 It is the structural diagram of the hollow feeding table.
[0024] Figure 8 Schematic diagram of the first perspective of the feeding carrier assembly.
[0025] Fig. 9 Schematic diagram of the second perspective of the feeding carrier assembly.
[0026] Fig.10 It is a structural schematic diagram of the feeding carrier plate.
[0027] Fig.11 A first-person perspective diagram of the assembly of the limit baffle and the movable bearing plate.
[0028] Fig.12 A schematic diagram from a second perspective of the assembly of the limit baffle and the movable bearing plate.
[0029] Fig.13 This is a diagram of the optical module detection system.
[0030] In the figure: 1, detection base; 11, first extension convex plate; 12, electric telescopic rod; 13, support sleeve; 14, bearing vertical plate; 15, support rail; 151, upward inclined plane; 16, support plate strip; 17, lower drive inclined plate strip; 18, second extension convex plate; 181, installation top plate; 182, switch; 19, mechanical arm; 191, suction cup; 2, storage barrel; 21, side bearing bottom plate; 22, positioning plug column; 23, bearing end plate; 231, movable matching hole; 24, blocking bearing plate; 25, movable matching rod; 26, first spring; 3, feeding hollow platform; 31, inner support rod; 32, through the plug hole; 33, through the channel; 34, bearing column; 35, guide matching hole; 36, matching crossbeam; 37, support bottom plate; 38, installation pole; 4, feeding bearing plate; 40, guide Towards the mounting rod; 41, moving channel; 42, matching convex plate; 43, matching supporting rod; 44, side supporting frame; 45, first rotating wheel; 46, matching column; 47, plug-in hole; 48, connecting through hole; 49, matching connecting rod; 5, movable carrying strip; 51, connecting connecting plate; 52, moving bearing hole; 53, connecting plug hole; 54, connecting plug rod; 55, pushing limit block; 56, supporting connecting plate; 57, matching sleeve hole; 6, movable carrying plate; 61, matching bearing block; 62, connecting matching rod; 63, second spring; 64, movable plug plate; 7, limiting baffle; 71, mounting through hole; 72, third spring; 73, mounting frame; 74, second rotating wheel; 75, matching connecting plate; 76, movable hinged rod; 8, movable carrying plate; 81, connecting side plate; 82, movable sleeve hole; 83, bearing convex block; 9, optical fiber plug. DETAILED DESCRIPTION
[0031] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0032] See also Figures 1 to 13 , the present invention provides a technical solution: A light module detection device in a production system includes a detection base 1, a first epitaxial convex plate 11 is fixedly arranged at one end of the detection base 1, an electric telescopic rod 12 is fixedly installed on the first epitaxial convex plate 11, a support sleeve 13 is fixedly arranged at one end of the detection base 1 close to the first epitaxial convex plate 11, a bearing vertical plate 14 is symmetrically fixedly arranged on the detection base 1 between the support sleeves 13, a support rail 15 is fixedly arranged on the bearing vertical plate 14, and an upward moving inclined surface 151 is arranged at one end of the support rail 15 A support slat 16 is fixedly provided on the support rail 15 at the lower side of the upward inclined plane 151, and a lower driving inclined plane slat 17 is provided on the support slat 16. A second extension convex plate 18 is fixedly provided on the other end of the detection base 1, and a mounting top plate 181 is fixedly provided on the second extension convex plate 18, and a switch 182 is fixedly provided on the mounting top plate 181. A mechanical arm 19 is installed on one side of the detection base 1, and a suction cup 191 is installed on the mechanical arm 19, and an automatic loading and unloading detection mechanism is provided on the detection base 1.
[0033] The automatic loading and unloading detection mechanism includes a material storage barrel 2, a feeding hollow platform 3, a feeding supporting plate 4, a movable carrying bar 5, a movable carrying plate 6, a limit baffle 7 and a movable carrying plate 8. The material storage barrel 2 is installed at one end of the detection base 1, and side bearing bottom plates 21 are symmetrically fixed on both sides of the lower end of the material storage barrel 2. Positioning pins 22 are fixed on the side bearing bottom plates 21, and the positioning pins 22 are inserted in the supporting sleeve 13.
[0034] A bearing end plate 23 is fixedly provided at one end of the storage barrel 2, a movable matching hole 231 is opened on the bearing end plate 23, and a blocking bearing plate 24 is installed on the bearing end plate 23, a movable matching rod 25 is fixedly provided on the blocking bearing plate 24, the movable matching rod 25 is inserted in the movable matching hole 231, and a first spring 26 is sleeved on the movable matching rod 25, and two ends of the first spring 26 are respectively fixed on the bearing end plate 23 and the blocking bearing plate 24, and the blocking bearing plate 24 blocks the lower port of the storage barrel 2.
[0035] The feeding hollow table 3 is fixedly mounted on the electric telescopic rod 12, an inner support rod 31 is fixedly arranged inside the feeding hollow table 3, and a through hole 32 is opened on the feeding hollow table 3, a through channel 33 is opened on the feeding hollow table 3 on the lower side of the through hole 32, bearing columns 34 are symmetrically fixedly arranged on both sides of the feeding hollow table 3, guide matching holes 35 are opened on the bearing columns 34, and matching cross beams 36 are fixedly arranged between the bearing columns 34, a supporting base plate 37 is also fixedly arranged at the lower end of the feeding hollow table 3, and mounting poles 38 are symmetrically fixedly arranged on both sides of the supporting base plate 37.
[0036] A feeding supporting plate 4 is installed on the feeding hollow table 3, and guide mounting rods 40 are symmetrically fixedly arranged on both sides of the feeding supporting plate 4 at one end close to the feeding hollow table 3, and the guide mounting rods 40 are inserted into the guide matching holes 35, and moving channels 41 are symmetrically arranged on both sides of the feeding supporting plate 4, and matching convex plates 42 are symmetrically fixedly arranged on both sides of the moving channel 41, and matching supporting rods 43 are fixedly arranged on the matching convex plates 42. In addition, before the feeding supporting plate 4 is moved downward, the height between its upper end surface and the feeding hollow table 3 is the height of the optical module.
[0037] Side support frames 44 are symmetrically fixed on both sides of the feeding carrier plate 4, and a first rotating wheel 45 is installed on the side support frames 44. A matching column 46 is fixed on the lower end of the feeding carrier plate 4, and a plug hole 47 is opened on the feeding carrier plate 4. The plug hole 47 passes through the matching column 46, and a connecting through hole 48 is opened at the bottom of the plug hole 47. Matching connecting rods 49 are symmetrically hinged on both sides of one end of the feeding carrier plate 4 away from the feeding hollow table 3, and a movable carrier bar 5 is hinged at the lower end of the matching connecting rod 49.
[0038] A connecting plate 51 is fixedly provided at one end of the movable carrier bar 5, and the connecting plate 51 is hinged with the matching connecting rod 49. A movable bearing hole 52 is provided at the other end of the movable carrier bar 5, and a matching crossbeam rod 36 is inserted in the movable bearing hole 52. The movable carrier bar 5 is also provided with a connecting socket 53, and a connecting plug rod 54 is inserted in the connecting socket 53. A push-up limit block 55 is fixedly provided on the upper end of the connecting plug rod 54, and a supporting connecting plate 56 is symmetrically fixed on the pushing-up limit block 55. A matching sleeve hole 57 is provided on the supporting connecting plate 56, and a matching sleeve hole 57 is inserted in the matching bearing rod 43. The connecting plug rod 54 can move up and down along the connecting socket 53.
[0039] A movable carrier plate 6 is installed at the lower end of the feeding carrier plate 4, and matching blocks 61 are symmetrically fixed on both sides of the movable carrier plate 6, and a connecting matching rod 62 is fixedly provided on the movable carrier plate 6, and the connecting matching rod 62 passes through the connecting through hole 48 and is inserted in the plug-in hole 47. A second spring 63 is sleeved on the connecting matching rod 62, and a movable plug plate 64 is fixedly provided on the upper end of the connecting matching rod 62, and the movable plug plate 64 is inserted in the plug-in hole 47. The diameter of the movable plug plate 64 is equal to the inner diameter of the plug-in hole 47, and the two ends of the second spring 63 are respectively fixed on the movable carrier plate 6 and the lower end surface of the matching column 46, and the upper end surface of the movable plug plate 64 is flush with the upper end surface of the feeding carrier plate 4.
[0040] A limit baffle 7 is installed on the support base plate 37, and a mounting through hole 71 is symmetrically opened on the limit baffle 7. A mounting vertical rod 38 is inserted in the mounting through hole 71, and a third spring 72 is sleeved on the mounting vertical rod 38, and the two ends of the third spring 72 are respectively fixed on the support base plate 37 and the limit baffle 7, and mounting frames 73 are symmetrically fixed on both sides of the limit baffle 7. A second rotating wheel 74 is installed on the mounting frame 73, and a matching connecting plate 75 is symmetrically fixed on the limit baffle 7. The matching connecting plate 75 is inserted in the feeding hollow table 3 through the channel 33, and the upper end of the matching connecting plate 75 is hinged with a movable hinge rod 76, and the movable hinge rod The lower end of 76 is hinged with a movable bearing plate 8, and the movable bearing plate 8 is located in the feeding hollow table 3. Connecting side plates 81 are symmetrically fixedly arranged on both sides of the lower end of the movable bearing plate 8. The connecting side plates 81 are hinged with the movable hinge rod 76, and a movable sleeve hole 82 is opened at the lower end of the movable bearing plate 8, and an inner support rod 31 is inserted in the movable sleeve hole 82. A bearing protrusion 83 is fixedly arranged on the upper end of the movable bearing plate 8, and an optical fiber plug 9 is fixedly installed on the bearing protrusion 83. In addition, the length between the feeding hollow table 3 and the limit baffle 7 is equal to the length of the optical module, and the upper end surface of the limit baffle 7 is flush with the upper end surface of the feeding hollow table 3 before it moves downward.
[0041] A light module detection system includes a control module, a force control monitoring module, a detection module and a communication module. The control module controls the movement of an electric telescopic rod 12 and a mechanical arm 19. The communication module realizes communication among the control module, the force control monitoring module and the detection module. The force control monitoring module is used to monitor the suction force of a suction cup 191 and the negative pressure suction force generated in a plug hole 47. The detection module is used to detect the light module.
[0042] When the optical modules are being tested, they are stacked and placed in the storage barrel 2, and the electric telescopic rod 12 is started to drive the feeding hollow table 3 to move to the bottom of the storage barrel 2, and then the blocking carrier plate 24 is pushed to move under the action of the feeding hollow table 3 so that it is no longer blocked at the lower port of the storage barrel 2. When the feeding carrier plate 4 is directly below the storage barrel 2, the optical module at the lower end of the storage barrel 2 will fall onto the feeding carrier plate 4, and the limiting of the two ends of the optical module is achieved by the feeding hollow table 3 and the limiting baffle 7. The other optical modules are still in the storage barrel 2 under the support of the lowermost optical module. Then the electric telescopic rod 12 is started to drive the feeding hollow table 3 to move in the direction of the switch 182, and the blocking carrier plate 24 is reset synchronously with it, and then The lower port of the material storage barrel 2 is blocked to support the optical module inside it. During the movement of the feeding hollow table 3, the first rotating wheel 45 will move downward along the upward inclined surface 151 on the supporting rail 15, so that the feeding supporting plate 4 moves downward under the action of its own gravity and the gravity of the optical module, so that the lower end surface of the feeding supporting plate 4 contacts the upper end surface of the supporting column 34, and the supporting column 34 supports it. During the downward movement of the feeding supporting plate 4, the two movable carriers 5 will be driven to move in the direction of the optical module under the action of the connecting rod 49, and the push-up limit block 55 will be driven to move synchronously. In this way, under the action of the push-up limit block 55, the optical module will be pushed to adjust the position of the optical module, limit it, and make it tight. The second rotating wheel 74 will be tightly covered on the plug-in hole 47. With the further movement of the feeding hollow table 3, the second rotating wheel 74 will contact the lower driving inclined panel strip 17. In this way, under the action of the lower driving inclined panel strip 17, the limiting baffle 7 will be driven to move downward so that it will no longer block one end of the optical module. In the process of the limiting baffle 7 moving downward, the lower end surface of the matching connecting plate 75 will contact the upper end surface of the matching bearing block 61, and then under the action of the matching connecting plate 75, the matching bearing block 61 will be pushed to move downward, thereby driving the movable carrier plate 6 to move downward. With the downward movement of the movable carrier plate 6, the movable plug plate 64 will also be driven to move downward. In this way, under the action of the movable plug plate 64, a negative pressure can be formed in the plug-in hole 47 to firmly fix the optical module on the feeding carrier plate 4, and with the limiting baffle 7 The downward movement of the movable hinge rod 76 will drive the movable supporting plate 8 to move, so that the optical fiber plug 9 passes through the socket 32 and is plugged into the optical module. With the movement of the feeding hollow platform 3, one end of the optical module will be plugged into the socket on the switch 182 for detection. After the detection is completed, the feeding hollow platform 3 moves in the opposite direction to pull the optical module out of the socket of the switch 182. At the same time, with the resetting of the feeding hollow platform 3, the negative pressure in the plug hole 47 will disappear, the feeding hollow platform 3 loses its fixation, and the first rotating wheel 45 contacts the upward moving inclined surface 151. Under the action of the upward moving inclined surface 151, the first rotating wheel 45 moves upward, and then the feeding supporting plate 4 moves upward, which will cause the push-up limit block 55 to release the optical module.The robot arm 19 removes the optical module through the suction cup 191 to realize unloading. The entire detection process does not require manual operation, which is very convenient and fast.
[0043] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An optical module detection device in a production system, comprising a detection base (1), characterized in that: A first extension convex plate (11) is fixedly provided at one end of the detection base (1), an electric telescopic rod (12) is fixedly mounted on the first extension convex plate (11), a support sleeve (13) is fixedly provided at one end of the detection base (1) close to the first extension convex plate (11), a bearing vertical plate (14) is symmetrically fixedly provided on the detection base (1) between the support sleeves (13), a supporting rail (15) is fixedly provided on the bearing vertical plate (14), an upward inclined surface (151) is provided at one end of the support rail (15), and a lower side of the upward inclined surface (151) is provided with a support rail (151). A support slat (16) is fixedly arranged on the support rail (15), and a lower drive inclined slat (17) is arranged on the support slat (16); a second extension convex plate (18) is fixedly arranged on the other end of the detection base (1), and a mounting top plate (181) is fixedly arranged on the second extension convex plate (18), and a switch (182) is fixedly mounted on the mounting top plate (181); a mechanical arm (19) is mounted on one side of the detection base (1), and a suction cup (191) is mounted on the mechanical arm (19); and an automatic loading and unloading detection mechanism is arranged on the detection base (1).
2. The optical module detection device in a production system according to claim 1, characterized in that: The automatic loading and unloading detection mechanism comprises a material storage barrel (2), a feeding hollow platform (3), a feeding bearing plate (4), a movable carrying strip (5), a movable carrying plate (6), a limit baffle (7) and a movable carrying plate (8); the material storage barrel (2) is mounted on one end of the detection base (1); side bearing bottom plates (21) are symmetrically fixedly arranged on both sides of the lower end of the material storage barrel (2); positioning pins (22) are fixedly arranged on the side bearing bottom plates (21); and the positioning pins (22) are inserted into the supporting sleeve (13).
3. The optical module detection device in a production system according to claim 2, characterized in that: A bearing end plate (23) is fixedly provided at one end of the material storage barrel (2), a movable matching hole (231) is opened on the bearing end plate (23), and a blocking bearing plate (24) is installed on the bearing end plate (23), a movable matching rod (25) is fixedly provided on the blocking bearing plate (24), the movable matching rod (25) is inserted into the movable matching hole (231), and a first spring (26) is sleeved on the movable matching rod (25).
4. The optical module detection device in a production system according to claim 3, characterized in that: The feeding hollow platform (3) is fixedly mounted on the electric telescopic rod (12); an inner support rod (31) is fixedly arranged inside the feeding hollow platform (3); a through insertion hole (32) is provided on the feeding hollow platform (3); a through passage (33) is provided on the feeding hollow platform (3) below the through insertion hole (32); supporting columns (34) are symmetrically fixedly arranged on both sides of the feeding hollow platform (3); guide matching holes (35) are provided on the supporting columns (34); matching crossbeams (36) are fixedly arranged between the supporting columns (34); a supporting bottom plate (37) is also fixedly arranged at the lower end of the feeding hollow platform (3); and mounting columns (38) are symmetrically fixedly arranged on both sides of the supporting bottom plate (37).
5. The optical module detection device in a production system according to claim 4, characterized in that: A feeding support plate (4) is mounted on the feeding hollow platform (3), and guide mounting rods (40) are symmetrically fixedly arranged on both sides of one end of the feeding support plate (4) close to the feeding hollow platform (3), and the guide mounting rods (40) are inserted into the guide matching holes (35), and moving channels (41) are symmetrically arranged on both sides of the feeding support plate (4), and matching convex plates (42) are symmetrically fixedly arranged on both sides of the moving channel (41), and matching supporting rods (43) are fixedly arranged on the matching convex plates (42).
6. The optical module detection device in a production system according to claim 5, characterized in that: Side support frames (44) are symmetrically fixedly arranged on both sides of the feeding support plate (4), and a first rotating wheel (45) is installed on the side support frame (44). A matching column (46) is fixedly arranged at the lower end of the feeding support plate (4), and a plug hole (47) is provided on the feeding support plate (4), the plug hole (47) passes through the matching column (46), and a connecting through hole (48) is provided at the bottom of the plug hole (47). Matching connecting rods (49) are symmetrically hinged on both sides of one end of the feeding support plate (4) away from the feeding hollow platform (3), and a movable carrier bar (5) is hinged at the lower end of the matching connecting rod (49).
7. The optical module detection device in a production system according to claim 6, characterized in that: A connecting plate (51) is fixedly provided at one end of the movable carrier bar (5), and the connecting plate (51) is hinged to the matching connecting rod (49). A movable bearing hole (52) is provided at the other end of the movable carrier bar (5), and a matching crossbeam rod (36) is inserted into the movable bearing hole (52). The movable carrier bar (5) is also provided with a connecting plug hole (53), and a connecting plug rod (54) is inserted into the connecting plug hole (53). A push-up limit block (55) is fixedly provided at the upper end of the connecting plug rod (54), and a supporting connecting plate (56) is symmetrically fixedly provided on the pushing-up limit block (55). A matching sleeve hole (57) is provided on the supporting connecting plate (56), and a matching bearing rod (43) is inserted into the matching sleeve hole (57).
8. The optical module detection device in a production system according to claim 7, characterized in that: A movable carrier plate (6) is mounted at the lower end of the feed carrier plate (4), matching blocks (61) are symmetrically fixedly arranged on both sides of the movable carrier plate (6), and a connecting matching rod (62) is fixedly arranged on the movable carrier plate (6), the connecting matching rod (62) passes through the connecting through hole (48) and is plugged into the plug hole (47), a second spring (63) is sleeved on the connecting matching rod (62), and a movable plug plate (64) is fixedly arranged on the upper end of the connecting matching rod (62), and the movable plug plate (64) is plugged into the plug hole (47).
9. The optical module detection device in a production system according to claim 8, characterized in that: A limit baffle (7) is mounted on the support bottom plate (37), the limit baffle (7) is symmetrically provided with mounting through holes (71), a mounting vertical rod (38) is inserted into the mounting through hole (71), a third spring (72) is sleeved on the mounting vertical rod (38), mounting frames (73) are symmetrically fixedly arranged on both sides of the limit baffle (7), a second rotating wheel (74) is mounted on the mounting frame (73), and a matching connecting plate (75) is symmetrically fixedly arranged on the limit baffle (7), the matching connecting plate (75) is inserted into the feeding hollow platform (3) by passing through the channel (33), and the upper side of the matching connecting plate (75) is fixedly provided with a second rotating wheel (74), and the matching connecting plate (75) is fixedly provided with a second rotating wheel (74), and the matching connecting plate (75) is fixedly provided with a second rotating wheel (74), and the matching connecting plate (75) is fixedly provided with a second rotating wheel (74), and the matching connecting plate (75) is fixedly provided with a matching connecting plate (75) by passing through the channel (33). The movable hinged rod (76) is hinged at the end, and the lower end of the movable hinged rod (76) is hinged to a movable bearing plate (8), and the movable bearing plate (8) is located in the feeding hollow table (3). Connecting side plates (81) are symmetrically fixedly arranged on both sides of the lower end of the movable bearing plate (8), and the connecting side plates (81) are hinged to the movable hinged rod (76). A movable sleeve hole (82) is opened at the lower end of the movable bearing plate (8), and an inner support rod (31) is inserted into the movable sleeve hole (82). A bearing protrusion (83) is fixedly arranged on the upper end of the movable bearing plate (8), and an optical fiber plug (9) is fixedly installed on the bearing protrusion (83).
10. An optical module detection system, characterized in that: The detection system is applicable to the optical module detection device according to any one of claims 1 to 9, comprising a control module, a force control monitoring module, a detection module and a communication module, wherein the control module controls the movement of the electric telescopic rod (12) and the mechanical arm (19), and the communication module realizes communication among the control module, the force control monitoring module and the detection module.
Citation Information
Patent Citations
Feeding device and optical module testing system
CN111285090A
Automatic optical module automatic test device and system
CN111397859A
Optical module testing device capable of realizing continuous detection
CN112938406A
Automatic feeding device for optical module assembly
CN213415432U
Automatic testing device and method for optical module
WO2024193047A1