Fixed detection device for coaxial cable processing based on intelligent sensor

Through intelligent sensors and specially designed fixing devices, the problems of cable deviation and insulation damage during the fixing process are solved, stable fixing and efficient processing of the cable are achieved, and the service life and processing accuracy of the cable are improved.

CN120703114AActive Publication Date: 2025-09-26ANHUI DEYUAN CABLE GRP
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Patent Information

Application Number
CN202510944762.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-09
Publication Date
2025-09-26
Estimated Expiration
2045-07-09

AI Technical Summary

Technical Problem

Existing coaxial cable processing devices can easily cause the cable to deviate from the optimal fixing position during the fixing process, and long-term clamping may damage the insulation layer, increasing the difficulty and inconvenience of processing.

Method used

Intelligent sensors are used in conjunction with linkage blocks, electric push rods, curved plates, friction rollers and smooth rollers to ensure that the cable is always located in the center during the fixing process. Image sensors are used to monitor insulation layer damage and adjust the clamping position. Marking devices and self-inspection devices are used to optimize the cable processing process.

Benefits of technology

It effectively prevents the cable from deviating from the fixed position, reduces manual adjustments, avoids damage to the insulation layer, extends the service life of the cable, and improves the cable cutting accuracy and processing safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a fixed detection device for coaxial cable processing based on an intelligent sensor, and relates to the technical field of cable processing. The cable processing device comprises a processing base, two threaded rods are symmetrically and rotationally installed in a sliding groove of the processing base, linkage blocks penetrate through the outer walls of the threaded rods and are movably installed on the outer walls of the threaded rods, a fixing mechanism is fixedly installed at the top of each linkage block, and a marking device for marking the outer wall of a cable is arranged on the periphery of each fixing mechanism. The damage degree of a cable clamping part can be monitored in real time through the image sensor, when an insulating layer on the surface of the cable is damaged to a certain degree, the image sensor sends an electric signal to the device, and when the device receives the electric signal, the device is started and changes the clamping position on the surface of the cable, so that the cable is uniformly stressed when being fixedly clamped, and the clamping efficiency is improved. The service life of the coaxial cable is prolonged, and when the damage degree of the insulating layer is large, an alarm can be sent to a worker in time to remind the worker to repair in time.
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Description

Technical Field

[0001] The present invention relates to the technical field of cable processing, and in particular to a fixed detection device for coaxial cable processing based on an intelligent sensor. Background Art

[0002] Coaxial cable is a type of wire and signal transmission line. Cable is a cable product used to transmit and distribute high-power electrical energy in the trunk lines of the power system. Cable is usually composed of four parts: wire core, insulation layer, shielding layer and protective layer. In the increasingly sophisticated power line laying, the proportion of cables is increasing.

[0003] Patent announcement number CN222421458U discloses a locking and fixing device for coaxial cable processing, comprising a base, the top of which is slidably connected to two fixed blocks, the fixed blocks being provided with a fixing assembly, the base being provided with an adjustment assembly, the fixing assembly comprising a connecting compartment fixedly connected to the top of the fixed block, the top of the connecting compartment and the front and back sides of the fixed block being rotatably connected to a rotating cylinder, the internal thread of the rotating cylinder being connected to a second threaded rod. This patent, by providing a fixing assembly, can allow the coaxial cable to pass through the fixed block during the processing of the coaxial cable, and by rotating the top rotating cylinder, the three connecting blocks are driven to move accordingly, and the three connecting blocks cooperate to restrict the coaxial cable, and by providing a protective pad, the friction between the coaxial cable and the coaxial cable can be increased, and the coaxial cable can be protected, thereby ensuring the fixing effect of the coaxial cable.

[0004] However, this device still has some shortcomings: this device can protect and fix the coaxial cable, but before the coaxial cable is fixed, the bottom of the coaxial cable is in a suspended state, which easily increases the probability of the coaxial cable deviating from the optimal fixing position of the fixing mechanism, and requires the staff to hold it or use external equipment for auxiliary support, which brings inconvenience to the processing of the coaxial cable to a certain extent. At the same time, long-term clamping and fixation can easily cause damage to the insulation layer on the cable surface. Summary of the Invention

[0005] In view of the deficiencies in the prior art, the present invention provides a fixed detection device for coaxial cable processing based on an intelligent sensor, which solves the problems raised in the above background technology.

[0006] To achieve the above objectives, the present invention is implemented through the following technical solutions: a fixed detection device for coaxial cable processing based on an intelligent sensor, comprising a processing seat, two threaded rods are symmetrically and rotatably installed inside the processing seat slide groove, a linkage block is passed through and movably installed on the outer wall of the threaded rod, a fixing mechanism is fixedly installed on the top of the linkage block, a marking device for marking the outer wall of the cable is provided on the periphery of the fixing mechanism, a self-inspection device for facilitating the observation of whether the equipment is operating normally is provided above the fixing mechanism, the bottom of the fixing mechanism is slidably connected to the top of the processing seat, a plurality of electric push rods are symmetrically and fixedly installed on the outer wall of the fixing mechanism, an arc plate is fixedly installed on the telescopic end of the electric push rod near the threaded rod, a cross bar is passed through and fixedly installed on both ends of the arc plate, a hollow arc block is passed through and hinged on the outer wall of both ends of the cross bar, a friction roller is rotatably installed inside the hollow arc block, an elastic U-shaped frame is fixedly installed inside the hollow groove of the fixing mechanism, and a smooth roller is rotatably installed inside the telescopic end of the elastic U-shaped frame, and an image sensor is provided on the top of the processing seat, and the sensor is used to monitor the degree of damage to the surface insulation layer of the coaxial cable in real time.

[0007] According to the above technical solution, a slide groove is provided on the top of the processing seat, and several racks are symmetrically and fixedly installed at the top edge of the processing seat. The threaded rod is driven by the output end of the external motor, and the threaded rod provides horizontal movement force for the operation of the equipment. The bottom of the linkage block is slidably connected to the bottom of the inner wall of the processing seat.

[0008] According to the above technical solution, hollow grooves are provided at the upper and lower ends of the fixing mechanism, the telescopic end of the electric push rod movably passes through the fixing mechanism, a rubber pad is fixedly installed on the concave surface of the arc plate, and the rubber pad effectively increases the friction between the arc plate and the coaxial cable, and a torsion spring is provided between the interior of the hollow arc block and the cross bar, and the hollow arc block prompts the coaxial cable to always be in the center of the arc plate during the fixing process, and the friction roller assists the centering effect of the hollow arc block, and the elastic U-shaped frame is of telescopic design, and the two ends of the coaxial cable are respectively placed in the two fixing mechanisms, and the electric push rod is started. The telescopic end of the electric push rod pushes the arc plate to move toward the center direction of the fixing mechanism, and the arc plate drives the cross bar to move synchronously, and the cross bar drives the hollow arc block to move in the direction of the cable, and the hollow arc block drives the friction roller to move synchronously. At this time, the outer wall of the friction roller contacts the cable skin, and as the hollow arc block advances, the friction between the friction roller and the cable skin prompts the friction roller to automatically move inside the hollow arc block. When the cable is fixed and locked, the threaded rod is driven to rotate by the output end of the external motor, and the threaded rod rotates by the threaded groove when it rotates, and the connecting block drives the fixing mechanism to slide horizontally along the top of the processing seat, thereby realizing the fixation of cables of different lengths.

[0009] According to the above technical solution, the marking device includes a transmission plate, which is fixedly installed on the side of the transmission plate close to the electric push rod under the outer wall of the fixing mechanism, and a gear is rotatably installed on the side of the transmission plate away from the fixing mechanism. A reciprocating screw is passed through and fixedly installed on the side of the gear close to the transmission plate, and a pigment mechanism is passed through and movably installed on the outer wall of the reciprocating screw.

[0010] According to the above technical solution, the gear is meshed with the rack, the outer wall of the reciprocating screw is a non-self-locking reciprocating spiral groove, the outer wall of the pigment mechanism is slidably mounted on the surface of the fixed mechanism, a pigment cotton block is provided inside the pigment mechanism, and the pigment cotton block marks the outer wall of the coaxial cable, the fixed mechanism drives the transmission plate to move horizontally, the transmission plate drives the gear to move synchronously, the gear generates a revolution force through the meshing rack, and when the gear revolves, it drives the reciprocating screw to rotate, and when the reciprocating screw rotates, it drives the pigment mechanism to slide horizontally along the outer wall of the fixed mechanism and reset through the non-self-locking reciprocating spiral groove on its own outer wall, and repeats this process. During this process, the pigment mechanism uses the pigment cotton block to apply powder to the outer wall of the cable port, and deepens the mark by multiple applications.

[0011] According to the above technical solution, a semicircular block is fixedly installed on the top of the pigment mechanism, and a dust suction component is slidably installed on the side of the fixed mechanism close to the pigment mechanism through a spring. The dust suction component is vertically reset by a spring, and a resistance block is fixedly installed on the top of the inner wall of the dust suction component. The bottom of the resistance block is in contact with the arc surface of the top of the semicircular block. When the pigment mechanism moves horizontally, it drives the semicircular block to move synchronously. When the semicircular block moves horizontally, it breaks away from the resistance to the arc surface of the bottom of the resistance block. At this time, the dust suction component drives the resistance block to slide downward along the outer wall of the fixed mechanism under the tension of the spring. When the semicircular block is reset, it pushes the resistance block. At this time, the resistance block pushes the dust suction component to reset.

[0012] The U-shaped plate is fixed on the top of the dust collection component near the bottom of one end of the resistance block, and the outer wall of the fixing mechanism is symmetrical and fixed with a plurality of U-shaped rails. A warning mechanism is installed inside the U-shaped rail through spring sliding. The top arc surface of the warning mechanism is located on the movement trajectory of the U-shaped plate. A warning light is provided inside the warning mechanism, which facilitates the staff to judge whether the equipment is operating normally from a distance. When the dust collection component slides downward and resets, it drives the U-shaped plate to move synchronously. When the U-shaped plate moves downward, it contacts and presses the top arc surface of the warning mechanism. Under the pressure of the U-shaped plate, the warning mechanism is prompted to slide horizontally along the U-shaped rail. After that, the warning mechanism is reset by the spring force. During the reciprocating horizontal movement and reset of the warning mechanism, the warning light is driven to move synchronously.

[0013] According to the above technical solution, a U-shaped frame is fixedly installed at the bottom of the U-shaped plate away from the warning mechanism, a round wheel is rotatably installed inside the vertical groove of the U-shaped frame, and a cooling mechanism is slidably installed on the outer wall of the fixing mechanism through a spring.

[0014] According to the above technical solution, the outer wall of the U-shaped frame is slidably installed on the surface of the fixing mechanism, and vertical grooves are provided at both ends of the U-shaped frame. The cooling mechanism is used to ensure that the cable surface hardens to avoid damage. The arc surface of the cooling mechanism contacts the outer wall of the circular wheel, and the U-shaped plate moves downward and resets, driving the U-shaped frame to move synchronously. In the process of the U-shaped frame driving the circular wheel downward, the circular wheel will contact the arc surface of the outer wall of the cooling mechanism, and the circular wheel will start to rotate due to the friction between the circular wheel and the outer wall of the cooling mechanism. At this time, the circular wheel will resist the cooling mechanism and slide along the surface of the fixing mechanism toward its center. After that, the cooling mechanism is reset by the spring force, and this is repeated repeatedly, effectively avoiding long-term cooling of the surface of the cable fixed end in the same direction.

[0015] The present invention provides a fixed detection device for coaxial cable processing based on an intelligent sensor. It has the following beneficial effects: (1) The present invention cooperates with the linkage block, the fixing mechanism, the electric push rod, the arc plate, the cross bar, the hollow arc block, the friction roller, the elastic U-shaped frame and the smooth roller. The hollow arc block and the friction roller cooperate with each other, so that the cable is always located in the center of the arc plate during the locking and fixing process, that is, at the center of the fixing mechanism. The setting of the rubber pad effectively reduces the slippage between the cable and the arc plate, so that the cable is always in the same position during processing, reducing the need for staff to adjust the equipment. The smooth roller and the elastic U-shaped frame cooperate with each other to effectively avoid the cable from being suspended in the air during the fixing process, thereby preventing the cable from being swayed. The coaxial cable deviates from the optimal fixing position of the fixing mechanism, and there is no need for workers to hold hands or external equipment for auxiliary support, which optimizes the cable processing process. The image sensor can monitor the degree of damage to the cable clamping part in real time. When the insulation layer on the cable surface is damaged to a certain extent, the image sensor will send an electrical signal to the device. When the device receives the electrical signal, it will start and change the clamping position on the cable surface, so that the cable is evenly stressed when fixed and clamped, thereby improving the service life of the coaxial cable. In addition, when the insulation layer is severely damaged, an alarm can be sent to the worker in time to remind the worker to make repairs in time.

[0016] (2) The present invention sets a marking device, and cooperates with a fixing mechanism, a transmission plate, a gear, a reciprocating screw, a paint mechanism, a semicircular block, a dust collecting component and a resistance block. The paint mechanism is used to reciprocately apply paint to the same part of the cable to determine the mark of the installation location of the outer component of the coaxial cable, which is convenient for subsequent staff to cut the cable surface at this location, improves the accuracy of cable cutting, and saves staff time in finding the determined direction; the dust collecting component moves downward when the paint mechanism marks the cable. At this time, the dust collecting component collects the floating color powder at a distance closer to the cable to prevent the powder from floating around and being inhaled by the staff.

[0017] (3) The present invention sets a self-checking device, cooperates with the dust collecting assembly, U-shaped plate, U-shaped rail, warning mechanism, U-shaped frame, round wheel and cooling mechanism, and makes the warning light always emit a dynamic warning light source through the reciprocating horizontal motion of the warning mechanism. The rubber static warning light source is more likely to attract the attention of the staff, and at the same time, it is convenient for the staff to judge whether the equipment is moving normally, thereby reducing the probability of safety accidents. The reciprocating sliding of the cooling mechanism prevents the cable skin from generating water vapor due to the large temperature difference between the cooling area and the outside, causing the inside of the fixing mechanism to become wet when the cable is pulled out, thereby affecting the subsequent fixing effect. At the same time, the cable skin is cooled and hardened, thereby avoiding the skin being softened by heat during long-term processing and deformation when the fixing mechanism is pulled out. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 A schematic diagram of the present invention as a whole; Figure 2 A schematic cross-sectional view of the present invention as a whole; Figure 3 This is a schematic diagram of the internal structure of the fixing plate of the present invention; Figure 4 This is an enlarged schematic diagram of the internal structure of the fixing plate of the present invention; Figure 5 Schematic diagram of the marking device of the present invention; Figure 6 This is a schematic diagram of the bottom right side view of the marking device of the present invention; Figure 7 Schematic diagram of the self-test device of the present invention; Figure 8 It is a schematic diagram of the self-test device of the present invention from the left side perspective.

[0019] In the figure: 1. Processing seat; 2. Rack; 3. Threaded rod; 4. Linking block; 5. Fixing mechanism; 6. Electric push rod; 7. Arc plate; 8. Cross bar; 9. Hollow arc block; 10. Friction roller; 11. Elastic U-shaped frame; 12. Smooth roller; 13. Marking device; 131. Transmission plate; 132. Gear; 133. Reciprocating screw; 134. Paint mechanism; 135. Semicircular block; 136. Dust collection component; 137. Interference block; 14. Self-test device; 141. U-shaped plate; 142. U-shaped rail; 143. Warning mechanism; 144. U-shaped frame; 145. Round wheel; 146. Cooling mechanism. DETAILED DESCRIPTION

[0020] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.

[0021] See also Figures 1-8One embodiment of the present invention is: a fixed detection device for coaxial cable processing based on an intelligent sensor, comprising a processing seat 1, two threaded rods 3 are symmetrically and rotatably installed in the slide groove of the processing seat 1, and a linkage block 4 is movably installed through the outer wall of the threaded rod 3. A fixing mechanism 5 is fixedly installed on the top of the linkage block 4, and a marking device 13 for marking the outer wall of the cable is arranged on the periphery of the fixing mechanism 5. A self-test device 14 is arranged above the fixing mechanism 5 to facilitate observation of whether the equipment is operating normally. The bottom of the fixing mechanism 5 is slidably connected to the top of the processing seat 1, and the outer surface of the fixing mechanism 5 is fixedly mounted on the top of the processing seat 1. The wall is symmetrical and fixedly installed with several electric push rods 6. An arc plate 7 is fixedly installed on the telescopic end of the electric push rod 6 near the side of the threaded rod 3. Cross bars 8 are passed through and fixedly installed at both ends of the arc plate 7. Hollow arc blocks 9 are passed through and hinged on the outer walls of both ends of the cross bar 8. A friction roller 10 is rotatably installed inside the hollow arc block 9. An elastic U-shaped frame 11 is fixedly installed inside the hollow groove of the fixing mechanism 5. A smooth roller 12 is rotatably installed inside the telescopic end of the elastic U-shaped frame 11. An image sensor is provided on the top of the processing seat 1, and the sensor is used to monitor the degree of damage to the surface insulation layer of the coaxial cable in real time.

[0022] A slide groove is provided on the top of the processing seat 1. Several racks 2 are symmetrically and fixedly installed at the top edge of the processing seat 1. The threaded rod 3 is driven by the output end of the external motor. The threaded rod 3 provides horizontal movement force for the operation of the equipment. The bottom of the connecting block 4 is slidably connected to the bottom of the inner wall of the processing seat 1.

[0023] Hollow grooves are provided at the upper and lower ends of the fixing mechanism 5. The telescopic end of the electric push rod 6 is movable and passes through the interior of the fixing mechanism 5. A rubber pad is fixedly installed on the concave surface of the arc plate 7, and the rubber pad effectively increases the friction between the arc plate 7 and the coaxial cable. A torsion spring is provided between the inside of the hollow arc block 9 and the cross bar 8. The hollow arc block 9 prompts the coaxial cable to always be in the center of the arc plate 7 during the fixing process. The friction roller 10 assists the centering effect of the hollow arc block 9, and the elastic U-shaped frame 11 is a telescopic design.

[0024] Through the cooperation of the hollow arc block 9 and the friction roller 10, the cable is always located in the center of the arc plate 7 during the locking and fixing process, that is, at the center of the fixing mechanism 5, and the setting of the rubber pad effectively reduces the slippage between the cable and the arc plate 7, so that the cable is always in the same position during processing, reducing the need for staff to adjust the equipment; through the mutual cooperation of the smooth roller 12 and the elastic U-shaped frame 11, the cable is effectively prevented from being suspended in the fixation process, preventing the coaxial cable from deviating from the optimal fixing position of the fixing mechanism 5, and no staff needs to hold hands or use external equipment for auxiliary support, thereby optimizing the cable processing process.

[0025] When in use, the two ends of the coaxial cable are respectively placed in the two fixing mechanisms 5, the electric push rod 6 is started, and the telescopic end of the electric push rod 6 pushes the arc plate 7 to move in the center direction of the fixing mechanism 5, and the arc plate 7 drives the cross bar 8 to move synchronously, and the cross bar 8 drives the hollow arc block 9 to move in the direction of the cable, and the hollow arc block 9 drives the friction roller 10 to move synchronously. At this time, the outer wall of the friction roller 10 contacts the cable skin. As the hollow arc block 9 is pushed forward, the friction between the friction roller 10 and the cable skin causes the friction roller 10 to rotate inside the hollow arc block 9. At the same time, the hollow arc block 9 is limited by the torsion spring between it and the cross bar 8, so that it can flip along the surface of the cross bar 8 after being subjected to the resistance force. At this time, the hollow arc block 9 and the friction roller 10 can drive the cable to move in the center direction of the arc plate 7 without damaging the cable skin, and the cable passes through the rubber pad on the outer wall of the arc plate 7 to increase the friction force between the cable and the arc plate 7; when one end of the cable enters the interior of the fixing mechanism 5, it first contacts the outer wall of the smooth roller 12, and the outer wall of the smooth roller 12 is pressed against the resistance of the cable The force of movement is generated by touching the bottom. At this time, the smooth roller 12 prompts the telescopic end of the elastic U-shaped frame 11 to retract toward the inside of the fixed end, and the cable will generate friction between the smooth roller 12 when passing through the fixing mechanism 5. At this time, the smooth roller 12 rotates inside the elastic U-shaped frame 11 through friction. When the cable is fixed and locked, the threaded rod 3 is driven to rotate by the output end of the external motor. When the threaded rod 3 rotates, the connecting block 4 is driven to slide horizontally through the threaded groove. The connecting block 4 drives the fixing mechanism 5 to slide horizontally along the top of the processing seat 1 to achieve the fixation of cables of different lengths. The image sensor can monitor the degree of damage to the cable clamping part in real time. When the insulation layer on the cable surface is damaged to a certain extent, the image sensor will send an electrical signal to the device. When the device receives the electrical signal, it will start and change the clamping position on the cable surface, so that the cable is evenly stressed when fixed and clamped, thereby improving the service life of the coaxial cable. When the insulation layer is severely damaged, an alarm can be sent to the worker in time to remind the worker to repair it in time.

[0026] According to the above embodiment, through the cooperation of the hollow arc block 9 and the friction roller 10, the cable is always located in the center of the arc plate 7 during the locking and fixing process, that is, at the center of the fixing mechanism 5, and the setting of the rubber pad effectively reduces the slippage between the cable and the arc plate 7, so that the cable is always located in the same position during processing, reducing the need for staff to adjust the equipment; through the mutual cooperation of the smooth roller 12 and the elastic U-shaped frame 11, the cable is effectively prevented from being suspended in the fixation process, and the coaxial cable is prevented from deviating from the optimal fixing position of the fixing mechanism 5, and there is no need for staff to hold hands or external equipment for auxiliary support, thereby optimizing the cable processing process.

[0027] See also Figures 1-8 , based on the above embodiment, another embodiment of the present invention further includes a marking device 13; The marking device 13 includes a transmission plate 131, which is fixedly installed under the outer wall of the fixing mechanism 5 on the side close to the electric push rod 6. A gear 132 is rotatably installed on the side of the transmission plate 131 away from the fixing mechanism 5. A reciprocating screw rod 133 is passed through and fixedly installed on the side of the gear 132 close to the transmission plate 131, and a pigment mechanism 134 is passed through and movably installed on the outer wall of the reciprocating screw rod 133.

[0028] The gear 132 is meshed with the rack 2, the outer wall of the reciprocating screw 133 is a non-self-locking reciprocating spiral groove, the outer wall of the pigment mechanism 134 is slidably mounted on the surface of the fixing mechanism 5, and a pigment cotton block is provided inside the pigment mechanism 134 to mark the outer wall of the coaxial cable.

[0029] A semicircular block 135 is fixedly installed on the top of the pigment mechanism 134, and a dust suction component 136 is slidably installed on the side of the fixing mechanism 5 close to the pigment mechanism 134 through a spring. The dust suction component 136 is vertically reset by the spring, and a resistance block 137 is fixedly installed on the top of the inner wall of the dust suction component 136, and the bottom of the resistance block 137 is in contact with the arc surface at the top of the semicircular block 135.

[0030] By reciprocatingly painting the same part of the cable with the paint mechanism 134, the mark of the installation location of the coaxial cable outer component is determined, which is convenient for subsequent staff to cut the cable surface here, improves the accuracy of cable cutting, and saves staff time in finding the determined direction; the dust suction component 136 will move downward when the paint mechanism 134 marks the cable. At this time, the dust suction component 136 collects the floating color powder at a distance closer to the cable to prevent the powder from floating around and being inhaled by the staff.

[0031] When in use, the fixing mechanism 5 drives the transmission plate 131 to move horizontally, and the transmission plate 131 drives the gear 132 to move synchronously. The gear 132 generates a revolution force through the meshing rack 2. When the gear 132 revolves, it drives the reciprocating screw rod 133 to rotate. When the reciprocating screw rod 133 rotates, it drives the paint mechanism 134 to slide horizontally along the outer wall of the fixing mechanism 5 and reset through the non-self-locking reciprocating spiral groove on its own outer wall. This is done reciprocatingly. During this process, the paint mechanism 134 uses the paint cotton block to apply powder to the outer wall of the cable port, and deepens the mark by multiple applications; when the paint mechanism 134 moves horizontally, it drives the semicircular block 135 to move synchronously. When the semicircular block 135 moves horizontally, it breaks away from the interference with the bottom arc surface of the interference block 137. At this time, the dust suction component 136 drives the interference block 137 to slide downward along the outer wall of the fixing mechanism 5 under the tension of the spring. When the semicircular block 135 is reset, it pushes the interference block 137. At this time, the interference block 137 pushes the dust suction component 136 to reset.

[0032] According to the above embodiment, the paint mechanism 134 repeatedly paints the same part of the cable to determine the mark at the installation location of the coaxial cable outer component, which is convenient for subsequent staff to cut the cable surface here, improves the accuracy of cable cutting, and saves staff time in finding the determined direction; the dust suction component 136 moves downward when the paint mechanism 134 marks the cable. At this time, the dust suction component 136 collects the floating color powder at a distance closer to the cable to prevent the powder from floating around and being inhaled by the staff.

[0033] See also Figures 1-8 , based on the above embodiment, another embodiment of the present invention further includes a self-test device 14; The self-inspection device 14 includes a U-shaped plate 141. The bottom of the U-shaped plate 141 is fixedly installed on the top of the dust collection component 136 near the resistance block 137. The outer wall of the fixing mechanism 5 is symmetrical and fixedly installed with a plurality of U-shaped rails 142. A warning mechanism 143 is installed inside the U-shaped rail 142 through spring sliding. The top arc surface of the warning mechanism 143 is located on the movement trajectory of the U-shaped plate 141. A warning light is provided inside the warning mechanism 143. The warning light facilitates the staff to judge whether the equipment is operating normally from a distance.

[0034] A U-shaped frame 144 is fixedly installed at the bottom of one end of the U-shaped plate 141 away from the warning mechanism 143. A round wheel 145 is rotatably installed inside the vertical groove of the U-shaped frame 144. A cooling mechanism 146 is slidably installed on the outer wall of the fixing mechanism 5 through a spring.

[0035] The outer wall of the U-shaped frame 144 is slidably mounted on the surface of the fixing mechanism 5 , and vertical grooves are provided at both ends of the U-shaped frame 144 . The cooling mechanism 146 is used to ensure that the cable surface hardens to avoid damage, and the arc surface of the cooling mechanism 146 contacts the outer wall of the circular wheel 145 .

[0036] Through the reciprocating horizontal motion of the warning mechanism 143, the warning light always emits a dynamic warning light source, and the rubber static warning light source is easier to attract the attention of the staff, and at the same time it is convenient for the staff to judge whether the equipment is moving normally, thereby reducing the probability of safety accidents; through the reciprocating sliding of the cooling mechanism 146, it is prevented that the cooling part is too different from the outside temperature to cause water vapor to form on the cable surface, causing the inside of the fixing mechanism 5 to become wet when the cable is pulled out, affecting the subsequent fixing effect, and at the same time cooling and hardening the cable surface, avoiding the surface being softened by heat during long-term processing, and deformation when the fixing mechanism 5 is pulled out.

[0037] When in use, the dust suction component 136 slides downward and resets, driving the U-shaped plate 141 to move synchronously. When the U-shaped plate 141 moves downward, it contacts and presses the top arc surface of the warning mechanism 143. Under the pressure of the U-shaped plate 141, the warning mechanism 143 is prompted to slide horizontally along the U-shaped rail 142. Then the warning mechanism 143 is reset by the spring force. During the reciprocating horizontal movement and reset of the warning mechanism 143, the warning light is driven to move synchronously; when the U-shaped plate 141 moves downward and resets, it drives the U-shaped frame 144 to move synchronously. During the process of the U-shaped frame 144 driving the round wheel 145 to move downward, the round wheel 145 will contact the outer wall arc surface of the cooling mechanism 146. The round wheel 145 starts to rotate due to the friction between the outer wall of the cooling mechanism 146. At this time, the round wheel 145 will resist the cooling mechanism 146 and slide along the surface of the fixing mechanism 5 toward its center. Then the cooling mechanism 146 is reset by the spring force, and this reciprocating process is repeated, effectively avoiding long-term cooling of the surface of the cable fixing end in the same position.

[0038] According to the above embodiment, through the reciprocating horizontal movement of the warning mechanism 143, the warning light always emits a dynamic warning light source, and the rubber static warning light source is easier to attract the attention of the staff, and at the same time it is convenient for the staff to judge whether the equipment is moving normally, thereby reducing the probability of safety accidents; through the reciprocating sliding of the cooling mechanism 146, it is prevented that the cooling part is too large to cause water vapor to form on the cable surface due to the temperature difference with the outside, causing the inside of the fixing mechanism 5 to become wet when the cable is pulled out, affecting the subsequent fixing effect, and at the same time cooling and hardening the cable surface, avoiding the softening of the surface due to heat during long-term processing, and deformation when the fixing mechanism 5 is pulled out.

[0039] The above description is only a preferred specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any technician familiar with the technical field, within the technical scope disclosed by the present invention, who makes equivalent replacements or changes based on the technical solution and inventive concept of the present invention, should be covered by the scope of protection of the present invention.

Claims

1. A fixed detection device for coaxial cable processing based on an intelligent sensor, comprising a processing seat (1), characterized in that: The processing seat (1) has two threaded rods (3) symmetrically and rotatably installed inside the sliding groove, and the outer wall of the threaded rod (3) is penetrated and movably installed with a linkage block (4), and a fixing mechanism (5) is fixedly installed on the top of the linkage block (4), and a marking device (13) for marking the outer wall of the cable is provided on the periphery of the fixing mechanism (5). A self-checking device (14) is provided above the fixing mechanism (5) for facilitating the observation of whether the equipment is operating normally, and the bottom of the fixing mechanism (5) is slidably connected to the top of the processing seat (1). The outer wall of the fixing mechanism (5) has a plurality of electric push rods (6) symmetrically and fixedly installed. An arc plate (7) is fixedly installed on one side of the telescopic end of the push rod (6) close to the threaded rod (3), and a cross bar (8) is passed through and fixedly installed at both ends of the arc plate (7), and a hollow arc block (9) is passed through and hinged on the outer wall of both ends of the cross bar (8), and a friction roller (10) is rotatably installed inside the hollow arc block (9), and an elastic U-shaped frame (11) is fixedly installed inside the hollow groove of the fixing mechanism (5), and a smooth roller (12) is rotatably installed inside the telescopic end of the elastic U-shaped frame (11). An image sensor is provided on the top of the processing seat (1), and the sensor is used to monitor the degree of damage to the surface insulation layer of the coaxial cable in real time.

2. The intelligent sensor-based fixed detection device for coaxial cable processing according to claim 1, characterized in that: A sliding groove is provided on the top of the processing seat (1), and a plurality of racks (2) are symmetrically and fixedly installed at the top edge of the processing seat (1). The threaded rod (3) is driven by the output end of an external motor, and the threaded rod (3) provides a horizontal movement force for the operation of the equipment. The bottom of the linkage block (4) is slidably connected to the bottom of the inner wall of the processing seat (1).

3. The intelligent sensor-based fixed detection device for coaxial cable processing according to claim 2, characterized in that: The fixing mechanism (5) is provided with hollow grooves at both upper and lower ends. The telescopic end of the electric push rod (6) is movable and penetrates the interior of the fixing mechanism (5). A rubber pad is fixedly installed on the concave surface of the arc plate (7), and the rubber pad effectively increases the friction between the arc plate (7) and the coaxial cable. A torsion spring is provided between the interior of the hollow arc block (9) and the cross bar (8). The hollow arc block (9) enables the coaxial cable to always be located at the center of the arc plate (7) during the fixing process. The friction roller (10) assists the centering effect of the hollow arc block (9). The elastic U-shaped frame (11) is of telescopic design.

4. The intelligent sensor-based fixed detection device for coaxial cable processing according to claim 3, characterized in that: The marking device (13) comprises a transmission plate (131), wherein the transmission plate (131) is fixedly mounted below the outer wall of the fixing mechanism (5) on a side close to the electric push rod (6), and a gear (132) is rotatably mounted on a side of the transmission plate (131) away from the fixing mechanism (5). A reciprocating screw rod (133) is passed through and fixedly mounted on a side of the gear (132) close to the transmission plate (131), and a pigment mechanism (134) is passed through and movably mounted on the outer wall of the reciprocating screw rod (133).

5. The intelligent sensor-based fixed detection device for coaxial cable processing according to claim 4, characterized in that: The gear (132) is meshed with the rack (2), the outer wall of the reciprocating screw (133) is a non-self-locking reciprocating spiral groove, the outer wall of the pigment mechanism (134) is slidably mounted on the surface of the fixing mechanism (5), and a pigment cotton block is provided inside the pigment mechanism (134), and the pigment cotton block marks the outer wall of the coaxial cable.

6. The intelligent sensor-based fixed detection device for coaxial cable processing according to claim 5, characterized in that: A semicircular block (135) is fixedly mounted on the top of the pigment mechanism (134); a dust collecting assembly (136) is slidably mounted on the side of the fixing mechanism (5) close to the pigment mechanism (134) via a spring; the dust collecting assembly (136) is vertically reset by the spring; a resisting block (137) is fixedly mounted on the top of the inner wall of the dust collecting assembly (136); the bottom of the resisting block (137) contacts the arc surface of the top of the semicircular block (135).

7. The intelligent sensor-based fixed detection device for coaxial cable processing according to claim 6, characterized in that: The self-checking device (14) comprises a U-shaped plate (141), the bottom of one end of the U-shaped plate (141) close to the resistance block (137) is fixedly mounted on the top of the dust collecting assembly (136), the outer wall of the fixing mechanism (5) is symmetrical and fixedly mounted with a plurality of U-shaped rails (142), the inside of the U-shaped rails (142) is slidably mounted with a warning mechanism (143) via a spring, the top arc surface of the warning mechanism (143) is located on the movement trajectory of the U-shaped plate (141), and a warning light is arranged inside the warning mechanism (143), and the warning light facilitates the staff to judge whether the equipment is operating normally from a distance.

8. The intelligent sensor-based fixed detection device for coaxial cable processing according to claim 7, characterized in that: A U-shaped frame (144) is fixedly mounted on the bottom of one end of the U-shaped plate (141) away from the warning mechanism (143); a circular wheel (145) is rotatably mounted inside the vertical groove of the U-shaped frame (144); and a cooling mechanism (146) is slidably mounted on the outer wall of the fixing mechanism (5) via a spring.

9. The intelligent sensor-based fixed detection device for coaxial cable processing according to claim 8, characterized in that: The outer wall of the U-shaped frame (144) is slidably mounted on the surface of the fixing mechanism (5). Both ends of the U-shaped frame (144) are provided with vertical grooves. The cooling mechanism (146) is used to ensure that the cable surface is hardened to avoid damage. The arc surface of the cooling mechanism (146) contacts the outer wall of the circular wheel (145).

Citation Information

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