Novel detection device for optical fiber communication cable production
By improving the clamping and testing mechanism of the detection device for fiber optic communication cable production, stable clamping and self-locking of the cable are achieved, solving the problems of cable slipping and falling off, and improving the detection accuracy and equipment safety.
Patent Information
- Application Number
- CN202510769014.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-10
- Publication Date
- 2025-08-08
AI Technical Summary
The existing detection devices for fiber optic communication cable production are prone to slipping and falling off during clamping, resulting in unstable detection and high equipment safety and operating strength.
The coordinated design of components such as bottom plate, support rod, test bench, bidirectional threaded rod, sliding plate, lower clamping plate, upper clamping plate and other components is adopted to realize automatic clamping and self-locking functions, ensure the stability and consistency of the cable during the inspection process, and improve the detection accuracy and equipment safety through auxiliary testing mechanisms and cleaning mechanisms.
It improves the accuracy of the detection results, reduces the maintenance cost and failure rate of the equipment, enhances the safety performance and operational convenience of the equipment, and reduces mechanical wear and physical damage.
Smart Images

Figure CN120445803A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of cable detection devices, and in particular to a novel detection device for producing optical fiber communication cables. Background Art
[0002] With the rapid development of information technology, the quality of fiber optic communication cables is directly related to the transmission stability, transmission rate and system reliability of communication signals. Therefore, it is particularly important to conduct comprehensive and accurate testing of fiber optic communication cables during the production process.
[0003] The patent with publication number CN221038451U relates to a wire and cable tension testing device, which particularly includes a base, the upper end of which is provided with a support frame and a distribution control box; a wire and cable tension testing device, through the setting of an automatic clamping component, during the cable clamping process, the end of the cable is inserted into the interior of the slide, so that the infrared sensor detects the cable and feeds back to the control panel, and the internal control circuit board activates two sets of electric cylinders, driving two sets of clamping blocks to clamp the cable. At the same time, the pressure sensor detects the clamping pressure. When the pressure reaches the set value, the continuous operation of the electric cylinder is stopped, thereby automatically clamping the cable. Similarly, the other end of the cable is also inserted into the interior of another set of slides for automatic clamping. When the cable needs to be removed, the control panel can simply turn off the electric cylinder. The structure is simple, labor-saving, and improves installation efficiency. However, when the device performs tension testing on the cable, the cable inside the clamping plate is prone to slipping, causing the cable to fall off during testing. Therefore, a new type of detection device for optical fiber communication cable production is proposed to solve the above-mentioned problems. Summary of the Invention
[0004] The technical problem to be solved by the present invention is to provide a new type of detection device for the production of optical fiber communication cables in view of the deficiencies in the above-mentioned prior art.
[0005] In order to solve the above technical problems, the technical solution adopted by the present invention is: a new type of detection device for optical fiber communication cable production, including a base plate, the top of the base plate is fixedly connected to a support rod, the circumferential surface of the support rod is sleeved with a spring, the circumferential surface of the support rod is slidably connected to a test bench, the inner wall of the test bench is rotatably connected to a bidirectional threaded rod, the circumferential surface of the bidirectional threaded rod is threadedly connected to a sliding plate, the top of the sliding plate is fixedly connected to a lower clamping plate, the inner wall of the lower clamping plate is slidably connected to a limiting rod, the top of the limiting rod is fixedly connected to an upper clamping plate, the bottom of the limiting rod is fixedly connected to a fixed block, and the fixed block is away from A pulley is installed on one side of the sliding plate, and a guide plate is fixedly connected to the bottom of the test bench. When testing, the upper clamping plate is driven by the two-way threaded rod to cooperate with the lower clamping plate to clamp the cable. The automatic clamping can ensure the stability and consistency of the cable during the testing process, avoid the cable position deviation caused by improper manual operation, thereby improving the accuracy of the test results, and avoiding the staff from getting their hands pinched during installation, improving the safety performance of the equipment, and reducing the intensity of operation; the two sides of the upper clamping plate are fixedly connected to the positioning block 1, the inner wall of the positioning block 1 is connected to the buckle by a torsion spring rotation, and the two sides of the lower clamping plate are fixedly connected to the buckle The cable is clamped by the upper clamping plate, and the lower clamping plate is provided with a clamping block, and the inner wall of the test table is provided with a cleaning hole; the lower clamping plate is provided with an auxiliary testing mechanism for assisting in pulling the cable near the cleaning hole, and the sliding plate is provided with a cleaning mechanism for cleaning the table surface near the cleaning hole; when the cable is clamped, the upper clamping plate moves downward to drive the buckle to cooperate with the clamping block to self-lock the lower clamping plate and the upper clamping plate, and the self-locking clamping plate can automatically lock the cable during the clamping process to avoid loosening or falling off of the clamping plate due to external force or vibration, thereby ensuring the stability of the cable during the entire testing or production process, reducing mechanical wear, and reducing the maintenance cost and failure rate of the equipment; the test The bottom of the platform is fixedly connected to the top of the spring, the sliding plate is slidably connected to the inner wall of the test platform, the bottom of the lower clamping plate contacts the top of the test platform, the top of the lower clamping plate contacts the bottom of the upper clamping plate, and the lower clamping plate cooperates with the limit rod to clamp the cable, the limit rod contacts the inner wall of the test platform, the inner wall of the guide plate is provided with a sliding groove, the pulley contacts the inner wall sliding groove of the guide plate, the buckle contacts both sides of the upper clamping plate, the buckle contacts both sides of the upper clamping plate, the block contacts the inner wall of the buckle, a motor is provided at the bottom of the test platform, and the front end of the bidirectional threaded rod is fixedly connected to the output end of the motor Preferably, the auxiliary testing mechanism includes a connecting plate, the inner wall of the connecting plate is rotatably connected to a flap, the inner wall of the flap is rotatably connected to a roller, the flap is fixedly connected to a gear 1 on a side away from the roller, and the top of the test bench is fixedly connected to a rack. When the cable is tested, the roller is driven by the clamping plate to rotate and pull the cable, so as to avoid damage or local breakage of the cable caused by excessive tension at a single point, ensuring that the cable remains smooth during the stretching process, reducing physical damage or performance degradation, helping to improve the authenticity of the test, reduce the risk of damage, enhance the durability of the cable, and ensure the accuracy of the test; the side of the connecting plate close to the flap is fixedly connected to a gear ring, the inner wall of the flap is rotatably connected to a reciprocating screw rod 1, both sides of the reciprocating screw rod 1 are fixedly connected to gear 2, and the reciprocating screw rod 1 is fixedly connected to the gear 2. The circumferential surface is movably connected with an elastic toggle plate, and the side of the flaps close to each other is fixedly connected to a limit baffle. When the cable is rotated and pulled, the flap drives the elastic toggle plate to toggle the cable, ensuring that it will not be damaged due to twisting or stretching during actual use, and comprehensively tests the durability, tensile strength, torsion resistance, fatigue performance and signal transmission stability of the cable, thereby ensuring that the cable can work stably for a long time in a complex environment, improving the detection effect; the connecting plate is fixedly connected to the side of the lower splint close to the cleaning hole, the circumferential surface of the gear one is meshed with the top of the rack, the circumferential surface of the gear two is meshed with the circumferential surface of the gear ring, the elastic toggle plate contacts the bottom of the limit baffle, and the limit baffle is used to limit the elastic toggle plate, and the roller is used to stir the cable.
[0006] Preferably, the cleaning mechanism includes a positioning block 2, the rotation of the positioning block 2 is connected to a reciprocating screw rod 2, both ends of the reciprocating screw rod 2 are fixedly connected to rollers, and the circumferential surface of the reciprocating screw rod 2 is movably connected to a scraper. When the test is completed, the lower clamping plate drives the scraper to move back and forth, thereby cleaning the top of the cleaning hole, avoiding residual waste from damaging the equipment, improving the service life of the equipment, making the working environment of the equipment better, and improving the accuracy of the test; the sliding plate is fixedly connected to a positioning block 3 on one side close to the cleaning hole, and the inner wall of the positioning block 3 is rotatably connected to a knocking plate through a torsion spring, and the bottom of the test bench is fixedly connected to a trapezoidal plate. After the test is completed, the sliding plate drives the knocking plate to knock on the bottom of the cleaning hole, which improves the cleaning effect of the equipment and makes the impurities remaining in the cleaning hole better cleaned, avoiding the long cleaning time of the staff and further improving the overall life of the equipment during use; the positioning block 2 is fixedly connected to the side of the lower splint close to the cleaning hole, the roller is in contact with the top of the test bench, and the circumferential surface of the roller is sleeved with a rubber ring to increase friction, the bottom of the scraper is in contact with the top of the test bench, the scraper is in contact with the side of the lower splint close to the cleaning hole, the top of the knocking plate is in contact with the bottom of the test bench, and the knocking plate moves on the motion trajectory of the trapezoidal plate.
[0007] The present invention adopts the above technical solution, which can bring the following beneficial effects: 1. A new type of detection device for optical fiber communication cable production, which cooperates with the bottom plate, support rod, spring, test bench, two-way threaded rod, sliding plate, lower clamping plate, limit rod, upper clamping plate, fixed block, pulley, guide plate, positioning block, buckle, clamping block, and cleaning hole to operate. When detecting, the two-way threaded rod drives the upper clamping plate to cooperate with the lower clamping plate to clamp the cable. The automatic clamping can ensure the stability and consistency of the cable during the detection process, avoid the cable position deviation caused by improper manual operation, thereby improving the accuracy of the detection result, and avoiding the staff from getting their hands pinched during installation, improving the safety performance of the equipment, and reducing the intensity of operation; when the cable is clamped, the upper clamping plate moves downward to drive the buckle to cooperate with the clamping block to self-lock the lower clamping plate and the upper clamping plate. The self-locking clamping plate can automatically lock the cable during the clamping process, avoiding loosening or falling off of the clamping plate due to external force or vibration, thereby ensuring the stability of the cable during the entire detection or production process, and also reducing mechanical wear, reducing the maintenance cost and failure rate of the equipment.
[0008] 2. This new type of detection device for the production of optical fiber communication cables, through the coordinated operation of the rack, connecting plate, flap, gear and roller, when testing the cable, drives the roller to rotate and pull the cable through the clamping plate, avoiding damage or partial breakage of the cable due to excessive tension at a single point, ensuring that the cable remains smooth during the stretching process, reducing physical damage or performance degradation, helping to improve the authenticity of the test, reduce the risk of damage, enhance the durability of the cable, and ensure the accuracy of the test.
[0009] 3. This new type of detection device for the production of optical fiber communication cables, through the coordinated operation between the gear ring, gear 2, reciprocating screw 1, limit baffle, and elastic toggle plate, when the cable is rotated and pulled, the flap drives the elastic toggle plate to toggle the cable, ensuring that it will not be damaged by twisting or stretching during actual use, and comprehensively testing the cable's durability, tensile strength, torsion resistance, fatigue performance, and signal transmission stability, thereby ensuring that the cable can work stably for a long time in a complex environment, thereby improving the detection effect.
[0010] 4. This new type of detection device for the production of optical fiber communication cables operates through the coordinated operation of the limit block 2, the reciprocating screw 2, the roller, and the scraper. After the test is completed, the lower clamping plate drives the scraper to move back and forth, thereby cleaning the top of the cleaning hole to prevent residual waste from damaging the equipment, thereby increasing the service life of the equipment, making the working environment of the equipment better, and improving the accuracy of the test.
[0011] 5. This new type of detection device for the production of optical fiber communication cables operates through the coordination between the limit block 3, the knocking plate, and the trapezoidal plate. When the test is completed, the sliding plate drives the knocking plate to knock on the bottom of the cleaning hole, thereby improving the cleaning effect of the equipment and making it possible to better clean the impurities remaining in the cleaning hole, thus avoiding the long cleaning time of the staff and further improving the overall life of the equipment during use. BRIEF DESCRIPTION OF THE DRAWINGS
[0012] Figure 1 It is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the lower splint structure of the present invention; Figure 3 For the present invention Figure 2 A magnified view of the structure at center A; Figure 4 This is a schematic diagram of the structure of the elastic toggle plate of the present invention; Figure 5 For the present invention Figure 4 A magnified view of the structure at point B in the middle; Figure 6 This is a schematic diagram of the scraper structure of the present invention; Figure 7 For the present invention Figure 6 Enlarged view of the structure at point C in the middle.
[0013] In the figure: 1. bottom plate; 2. support rod; 3. spring; 4. test bench; 5. two-way threaded rod; 6. sliding plate; 7. lower clamping plate; 8. limit rod; 9. upper clamping plate; 10. fixed block; 11. pulley; 12. guide plate; 13. positioning block 1; 14. buckle; 15. clamping block; 16. cleaning hole; 17. auxiliary test mechanism; 171. rack; 172. connecting plate; 173. flip plate; 174. gear 1; 175. roller; 176. gear ring; 177. gear 2; 178. reciprocating screw rod 1; 179. limit baffle; 1710. elastic toggle plate; 18. cleaning mechanism; 181. positioning block 2; 182. reciprocating screw rod 2; 183. roller; 184. scraper; 185. positioning block 3; 186. knocking plate; 187. trapezoidal plate. DETAILED DESCRIPTION
[0014] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. 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 making creative efforts are within the scope of protection of the present invention.
[0015] See also Figure 1-Figure 7, one embodiment of the present invention is: a new type of optical fiber communication cable production detection device, including a base plate 1, the top of the base plate 1 is fixedly connected to a support rod 2, the circumferential surface of the support rod 2 is sleeved with a spring 3, the circumferential surface of the support rod 2 is slidably connected to a test bench 4, the inner wall of the test bench 4 is rotatably connected to a bidirectional threaded rod 5, the circumferential surface of the bidirectional threaded rod 5 is threadedly connected to a sliding plate 6, the top of the sliding plate 6 is fixedly connected to a lower clamping plate 7, the inner wall of the lower clamping plate 7 is slidably connected to a limit rod 8, the top of the limit rod 8 is fixedly connected to an upper clamping plate 9, the bottom of the limit rod 8 is fixedly connected to a fixed block 10, a pulley 11 is installed on the side of the fixed block 10 away from the sliding plate 6, and the bottom of the test bench 4 is fixedly connected to a guide plate 12; When the production of new optical fiber communication cables is completed, some of the new optical fiber communication cables need to be sampled and tested. First, the bidirectional threaded rod 5 is driven by a motor to rotate, and the bidirectional threaded rod 5 drives the sliding plate 6 to move closer to the middle through the thread groove on the circumferential surface, and the sliding plate 6 drives the lower splint 7 to move closer to the middle. At this time, the staff puts some of them side by side on the top of the lower splint 7, and then rotates the bidirectional threaded rod 5 in the opposite direction, so that the bidirectional threaded rod 5 drives the sliding plate 6 to pull to both sides, and the sliding plate 6 drives the lower splint 7 to move to both sides, and the lower splint 7 drives the limit rod 8 to move to both sides, and the limit rod 8 drives the upper splint 9 to move, and at the same time, the limit The positioning rod 8 drives the fixed block 10 to move, and the fixed block 10 drives the pulley 11 to move. The pulley 11 contacts the inner wall groove of the guide plate 12 through the circumferential surface, thereby driving the fixed block 10 to move downward, and the fixed block 10 drives the limiting rod 8 to move downward, and the limiting rod 8 drives the upper clamping plate 9 to move downward, so that the upper clamping plate 9 cooperates with the lower clamping plate 7 to clamp the cable. Automatic clamping can ensure the stability and consistency of the cable during the detection process, avoid the cable position deviation caused by improper manual operation, thereby improving the accuracy of the detection result, and avoiding the staff from getting their hands pinched during installation, improving the safety performance of the equipment, and reducing the intensity of operation; The upper clamping plate 9 is fixedly connected to a positioning block 13 on both sides, and the inner wall of the positioning block 13 is connected to a buckle 14 by rotating through a torsion spring. The lower clamping plate 7 is fixedly connected to a clamping block 15 on both sides, and a cleaning hole 16 is provided on the inner wall of the test table 4; an auxiliary test mechanism 17 for assisting in pulling the cable is provided on the side of the lower clamping plate 7 near the cleaning hole 16, and a cleaning mechanism 18 for cleaning the table surface is provided on the side of the sliding plate 6 near the cleaning hole 16; the bottom of the test table 4 is fixedly connected to the top of the spring 3, the sliding plate 6 is slidably connected to the inner wall of the test table 4, and the lower clamping plate 7 is fixedly connected to the inner wall of the test table 4. The bottom of the plate 7 contacts the top of the test bench 4, the top of the lower splint 7 contacts the bottom of the upper splint 9, and the lower splint 7 cooperates with the limit rod 8 to clamp the cable, the limit rod 8 contacts the inner wall of the test bench 4, the inner wall of the guide plate 12 is provided with a slide groove, the pulley 11 contacts the inner wall slide groove of the guide plate 12, the buckle 14 contacts both sides of the upper splint 9, the buckle 14 contacts both sides of the upper splint 9, the clamping block 15 contacts the inner wall of the buckle 14, and a motor is provided at the bottom of the test bench 4. The front end of the bidirectional threaded rod 5 is fixedly connected to the output end of the motor; When the cable is clamped, the upper clamping plate 9 moves downward to drive the positioning block 13 to move downward, and the positioning block 13 drives the buckle 14 to move downward. The buckle 14 moves through the inclined surface at the bottom and contacts the top inclined surface of the clamping block 15, thereby driving the buckle 14 to rotate. When the clamping block 15 enters the inner wall of the buckle 14, the buckle 14 will be installed with a torsion spring on the inner wall of the positioning block 13, thereby driving the buckle 14 to reset, so that the buckle 14 cooperates with the clamping block 15 to self-lock the lower clamping plate 7 and the upper clamping plate 9. The self-locking clamping plate can automatically lock the cable during the clamping process to avoid loosening or falling off of the clamping plate due to external force or vibration, thereby ensuring the stability of the cable during the entire testing or production process, and also reducing mechanical wear, reducing the maintenance cost and failure rate of the equipment. During testing, if the cable breaks, the spring 3 will be used to reduce vibration of the equipment to avoid damage to the equipment.
[0016] Working principle: During testing, the upper clamping plate 9 is driven by the bidirectional threaded rod 5 to cooperate with the lower clamping plate 7 to clamp the cable. The automatic clamping can ensure the stability and consistency of the cable during the testing process, avoid the cable position deviation caused by improper manual operation, and thus improve the accuracy of the test results; when the cable is clamped, the upper clamping plate 9 moves downward to drive the buckle 14 to cooperate with the clamping block 15 to self-lock the lower clamping plate 7 and the upper clamping plate 9. The self-locking clamping plate can automatically lock the cable during the clamping process to avoid the clamping plate from loosening or falling off due to external force or vibration, thereby ensuring the stability of the cable during the entire testing or production process.
[0017] See also Figure 1-Figure 7In another embodiment of the present invention, based on the above embodiment, the auxiliary testing mechanism 17 includes a connecting plate 172, the inner wall of the connecting plate 172 is rotatably connected to a flap 173, the inner wall of the flap 173 is rotatably connected to a roller 175, a side of the flap 173 away from the roller 175 is fixedly connected to a gear 174, and a top of the test bench 4 is fixedly connected to a rack 171; When testing the cable, the cable will pass through the roller 175. At this time, the lower clamping plate 7 moves to both sides to drive the connecting plate 172 to move, the connecting plate 172 drives the flap 173 to move, the flap 173 drives the gear 174 to move, the gear 174 moves through the circumferential surface and engages with the top of the rack 171, thereby driving the gear 174 to rotate, the gear 174 drives the flap 173 to rotate, the flap 173 drives the roller 175 to rotate, and the rotation of the roller 175 will drive the passed cable to rotate and pull, avoiding damage to the cable or local breakage caused by excessive tension at a single point, ensuring that the cable remains smooth during the stretching process, reducing physical damage or performance degradation, helping to improve the authenticity of the test, reduce the risk of damage, enhance the durability of the cable, and ensure the accuracy of the test at the same time; The connecting plate 172 is fixedly connected to the side of the flap 173 close to the gear ring 176, and the inner wall of the flap 173 is rotatably connected to a reciprocating screw rod 178, and the two sides of the reciprocating screw rod 178 are fixedly connected to the gear 2 177. The circumferential surface of the reciprocating screw rod 178 is movably connected to an elastic toggle plate 1710, and the side of the flaps 173 close to each other is fixedly connected to a limit baffle 179; the connecting plate 172 is fixedly connected to the side of the lower splint 7 close to the cleaning hole 16, the circumferential surface of the gear 174 is meshed with the top of the rack 171, the circumferential surface of the gear 2 177 is meshed with the circumferential surface of the gear ring 176, the elastic toggle plate 1710 is in contact with the bottom of the limit baffle 179, and the limit baffle 179 is used to limit the elastic toggle plate 1710, and the roller 175 is used to stir the cable; When the cable is rotated and pulled, the rotation of the flap 173 drives the reciprocating screw rod 178 to rotate, and the reciprocating screw rod 178 drives the gear 2 177 to rotate. The gear 2 177 rotates through the circumferential surface to engage with the circumferential surface of the gear ring 176, thereby driving the gear 2 177 to rotate on itself, and the gear 2 177 drives the reciprocating screw rod 178 to rotate. The reciprocating screw rod 178 rotates through the reciprocating groove of the circumferential surface to drive the elastic toggle plate 1710 to move back and forth, thereby driving the elastic toggle plate 1710 to toggle the cable, ensuring that it will not be damaged by twisting or stretching during actual use, and comprehensively testing the durability, tensile strength, torsion resistance, fatigue performance and signal transmission stability of the cable, thereby ensuring that the cable can work stably for a long time in a complex environment, thereby improving the detection effect.
[0018] Working principle: When testing the cable, the roller 175 is driven by the splint 7 to rotate and pull the cable, so as to avoid damage to the cable or local breakage caused by excessive tension at a single point, and ensure that the cable remains smooth during the stretching process, reducing physical damage or performance degradation, which helps to improve the authenticity of the test, reduce the risk of damage, and enhance the durability of the cable; when the cable is rotated and pulled, the flap 173 drives the elastic toggle plate 1710 to toggle the cable, ensuring that it will not be damaged by twisting or stretching during actual use, and comprehensively testing the cable's durability, tensile strength, torsion resistance, fatigue performance and signal transmission stability, thereby improving the detection effect.
[0019] The cleaning mechanism 18 includes a second positioning block 181, which is rotatably connected to a second reciprocating screw 182. Both ends of the reciprocating screw 182 are fixedly connected to rollers 183, and the circumferential surface of the reciprocating screw 182 is movably connected to a scraper 184. When the test is finished, the lower clamping plate 7 moves to both sides to drive the positioning block 2 181 to move, the positioning block 2 181 drives the reciprocating screw rod 2 182 to move, the reciprocating screw rod 2 182 drives the roller 183 to move, the roller 183 moves through the rubber ring on the circumferential surface to contact the top of the test bench 4, thereby driving the roller 183 to rotate, the roller 183 drives the reciprocating screw rod 2 182 to rotate, the reciprocating screw rod 2 182 rotates through the reciprocating groove on the circumferential surface to drive the scraper 184 to reciprocate, thereby cleaning the top of the cleaning hole 16, avoiding residual waste from damaging the equipment, improving the service life of the equipment, making the working environment of the equipment better, and improving the accuracy of the test; A third positioning block 185 is fixedly connected to one side of the sliding plate 6 near the cleaning hole 16, and a knocking plate 186 is rotatably connected to the inner wall of the positioning block 185 through a torsion spring. A trapezoidal plate 187 is fixedly connected to the bottom of the test bench 4; the second positioning block 181 is fixedly connected to the side of the lower clamping plate 7 near the cleaning hole 16, the roller 183 is in contact with the top of the test bench 4, and the circumferential surface of the roller 183 is sleeved with a rubber ring for increasing friction, the bottom of the scraper 184 is in contact with the top of the test bench 4, the scraper 184 is in contact with the side of the lower clamping plate 7 near the cleaning hole 16, the top of the knocking plate 186 is in contact with the bottom of the test bench 4, and the knocking plate 186 moves on the motion trajectory of the trapezoidal plate 187; When the test is completed, the sliding plate 6 drives the positioning block three 185 to move, and the movement of the positioning block three 185 drives the knocking plate 186 to move. The knocking plate 186 moves on the moving trajectory of the trapezoidal plate 187. When the knocking plate 186 contacts the trapezoidal plate 187, it drives the knocking plate 186 to rotate. After leaving the trapezoidal plate 187, it will knock on the bottom of the cleaning hole 16, thereby improving the cleaning effect of the equipment, so that the impurities remaining in the cleaning hole 16 can be better cleaned, avoiding the staff's cleaning time, and further improving the overall life of the equipment during use.
[0020] Working principle: When the test is completed, the lower clamping plate 7 drives the scraper 184 to move back and forth, thereby cleaning the top of the cleaning hole 16, preventing residual waste from damaging the equipment and improving the service life of the equipment; when the test is completed, the sliding plate 6 drives the knocking plate to knock on the bottom of the cleaning hole 16, thereby improving the cleaning effect of the equipment.
[0021] The present invention provides a novel inspection device for optical fiber communication cable production. There are numerous methods and approaches for implementing this technical solution. The foregoing is merely a preferred embodiment of the present invention. It should be noted that those skilled in the art may make various improvements and modifications without departing from the principles of the present invention, and such improvements and modifications are also within the scope of protection of the present invention. Any components not specified in this embodiment may be implemented using existing technologies.
Claims
1. A novel optical fiber communication cable production detection device, comprising a bottom plate (1), characterized in that: The top of the base plate (1) is fixedly connected to a support rod (2), the circumferential surface of the support rod (2) is sleeved with a spring (3), the circumferential surface of the support rod (2) is slidably connected to a test bench (4), the inner wall of the test bench (4) is rotatably connected to a bidirectional threaded rod (5), the circumferential surface of the bidirectional threaded rod (5) is threadedly connected to a sliding plate (6), the top of the sliding plate (6) is fixedly connected to a lower clamping plate (7), the inner wall of the lower clamping plate (7) is slidably connected to a limiting rod (8), and the top of the limiting rod (8) is fixedly connected to an upper clamping plate (7). The bottom of the limit rod (8) is fixedly connected to a fixed block (10), and a pulley (11) is installed on the side of the fixed block (10) away from the sliding plate (6). The bottom of the test bench (4) is fixedly connected to a guide plate (12), and both sides of the upper clamping plate (9) are fixedly connected to a positioning block (13), and the inner wall of the positioning block (13) is connected to a buckle (14) through a torsion spring. The two sides of the lower clamping plate (7) are fixedly connected to a clamping block (15), and the inner wall of the test bench (4) is provided with a cleaning hole (16).
2. A novel optical fiber communication cable production detection device according to claim 1, characterized in that: An auxiliary testing mechanism (17) for assisting in pulling the cable is provided on one side of the lower clamping plate (7) close to the cleaning hole (16), and a cleaning mechanism (18) for cleaning the table surface is provided on one side of the sliding plate (6) close to the cleaning hole (16).
3. A novel optical fiber communication cable production detection device according to claim 2, characterized in that: The bottom of the test bench (4) is fixedly connected to the top of the spring (3), the sliding plate (6) is slidably connected to the inner wall of the test bench (4), the bottom of the lower clamping plate (7) contacts the top of the test bench (4), the top of the lower clamping plate (7) contacts the bottom of the upper clamping plate (9), and the lower clamping plate (7) cooperates with the limiting rod (8) to clamp the cable, the limiting rod (8) contacts the inner wall of the test bench (4), the inner wall of the guide plate (12) is provided with a sliding groove, the pulley (11) contacts the inner wall sliding groove of the guide plate (12), the buckle (14) contacts both sides of the upper clamping plate (9), the buckle (14) contacts both sides of the upper clamping plate (9), the clamping block (15) contacts the inner wall of the buckle (14), a motor is provided at the bottom of the test bench (4), and the front end of the bidirectional threaded rod (5) is fixedly connected to the output end of the motor.
4. A novel optical fiber communication cable production detection device according to claim 3, characterized in that: The auxiliary testing mechanism (17) includes a connecting plate (172), the inner wall of the connecting plate (172) is rotatably connected to a flap (173), the inner wall of the flap (173) is rotatably connected to a roller (175), a side of the flap (173) away from the roller (175) is fixedly connected to a gear 1 (174), and the top of the test bench (4) is fixedly connected to a rack (171).
5. A novel optical fiber communication cable production detection device according to claim 4, characterized in that: A gear ring (176) is fixedly connected to one side of the connecting plate (172) close to the flap (173); a reciprocating screw rod (178) is rotatably connected to the inner wall of the flap (173); gears (177) are fixedly connected to both sides of the reciprocating screw rod (178); a resilient toggle plate (1710) is movably connected to the circumferential surface of the reciprocating screw rod (178); and a limit stopper (179) is fixedly connected to one side of the flaps (173) close to each other.
6. A novel optical fiber communication cable production detection device according to claim 5, characterized in that: The connecting plate (172) is fixedly connected to one side of the lower clamping plate (7) near the cleaning hole (16), the circumferential surface of the gear 1 (174) is meshed with the top of the rack (171), the circumferential surface of the gear 2 (177) is meshed with the circumferential surface of the gear ring (176), the elastic toggle plate (1710) is in contact with the bottom of the limiting baffle (179), and the limiting baffle (179) is used to limit the elastic toggle plate (1710), and the roller (175) is used to stir the cable.
7. A novel optical fiber communication cable production detection device according to claim 6, characterized in that: The cleaning mechanism (18) includes a second positioning block (181), the second positioning block (181) is rotatably connected to a second reciprocating screw rod (182), both ends of the second reciprocating screw rod (182) are fixedly connected to rollers (183), and the circumferential surface of the second reciprocating screw rod (182) is movably connected to a scraper (184).
8. A novel optical fiber communication cable production detection device according to claim 7, characterized in that: A positioning block three (185) is fixedly connected to one side of the sliding plate (6) close to the cleaning hole (16), and the inner wall of the positioning block three (185) is rotatably connected to a knocking plate (186) via a torsion spring. The bottom of the test bench (4) is fixedly connected to a trapezoidal plate (187).
9. A novel optical fiber communication cable production detection device according to claim 8, characterized in that: The second positioning block (181) is fixedly connected to the side of the lower clamping plate (7) close to the cleaning hole (16), the roller (183) contacts the top of the test bench (4), and the circumferential surface of the roller (183) is sleeved with a rubber ring for increasing friction, the bottom of the scraper (184) contacts the top of the test bench (4), the scraper (184) contacts the side of the lower clamping plate (7) close to the cleaning hole (16), the top of the knocking plate (186) contacts the bottom of the test bench (4), and the knocking plate (186) moves on the motion trajectory of the trapezoidal plate (187).
Citation Information
Patent Citations
A wire and cable tension testing device
CN221038451U
Cited By
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