Surface coating device for insulated cable wire production and processing
By combining conductive heating dehumidification, capillary cleaning, and quantitative material replenishment, the problem of incomplete cleaning of oil and moisture on the copper wire surface is solved, the bonding effect of the insulation layer and the accuracy of material replenishment are improved, and the equipment structure is simplified.
Patent Information
- Application Number
- CN202511375184.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-25
- Publication Date
- 2025-11-21
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In the current production process of insulated cables and wires, oil and moisture on the surface of copper wires are not effectively cleaned, resulting in poor bonding of the insulation layer. In addition, untimely or inappropriate replenishment of materials leads to insulation layer breakage and residues after equipment shutdown, affecting the next use.
A conductive mechanism is used to energize and heat the copper wires to dehumidify them. The capillary effect of the cleaning block and adsorption ring is used to efficiently clean oil stains. A photoelectric switch is used to achieve quantitative feeding. The combination of reciprocating mechanism and cleaning mechanism ensures cleaning effect and resource conservation.
It achieves a good bond between copper wire and insulation layer, ensuring insulation coating effect, saving resources, and precise quantitative material replenishment, avoiding the impact of residue after equipment shutdown.
Smart Images

Figure CN120998602A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application relates to the technical field of insulated cable and wire production, and in particular to a surface coating device for insulated cable and wire production and processing. BACKGROUND
[0002] The surface coating device for insulated cable and wire production and processing is used for uniformly coating an insulating material (such as cross-linked polyethylene, PVC, silicone rubber, etc.) on the surface of a metal conductor copper to form an insulating layer or a protective sleeve.
[0003] The copper wire produced has a layer of oil stains on the surface. If the oil stains are not removed before coating, the copper will have a poor bonding effect with the insulating layer, thereby resulting in poor insulating coating effect. The existing cleaning method is to use manual or disposable cleaning materials for cleaning, thereby resulting in poor cleaning effect and waste of resources. If the water on the copper wire is not cleaned in time, the copper wire will be damp, and when the copper wire is bonded with the insulating layer, a gap will be formed between the copper wire and the insulating layer, thereby resulting in poor insulating coating effect. Meanwhile, when the insulating layer is coated, if the material is not replenished in time when the material is used up, the insulating layer will be broken, thereby affecting the overall insulating effect. When the machine is not replenished with the material, part of the excess material after melting will be left in the coating mechanism, thereby affecting the use of the next start-up.
[0004] Therefore, the surface coating device for insulated cable and wire production and processing is provided. SUMMARY
[0005] The purpose of the application is to solve the above technical problems, and the surface coating device for insulated cable and wire production and processing is provided, so as to achieve the effects of good cleaning effect, good insulating coating, resource saving and quantitative material replenishment.
[0006] Therefore, the surface coating device for insulated cable and wire production and processing is provided. The fixed mechanism comprises a fixed cylinder and two limiting sliding grooves symmetrically formed in the inner wall of the fixed cylinder, the fixed cylinder is rotationally connected with a driving cylinder inside, the driving cylinder is provided with a reciprocating groove on the side, and the driving cylinder is provided with an annular groove at the end away from the driving mechanism. The reciprocating mechanism comprises a pulling cylinder, two symmetrically-distributed sliding grooves are formed in the outer surface of the pulling cylinder, a sliding rod is slidably connected in the sliding grooves, a fixed block is fixedly connected at one end of the sliding rod, one side of the fixed block is fixedly connected with one end of the fixed cylinder, a cleaning block is fixedly connected at one end of the pulling cylinder, two symmetrically-distributed driving frames are fixedly connected on the pulling cylinder, two symmetrically-distributed limiting rods are penetratingly installed at the end of the driving frame away from the pulling cylinder, one end of the limiting rod extends into the driving groove and is slidably connected with the inner wall of the driving groove, and the other end of the limiting rod is slidably connected with the inner wall of the limiting sliding groove. The cleaning block is located between the two driving frames and is slidably connected with the inner wall of the driving cylinder.
[0007] Preferably, the driving mechanism comprises a supporting frame and a driving bin penetratingly formed in the upper half of the supporting frame, a ceramic bead is rotatably connected with the inner wall of the driving bin, a driving ring is arranged in the driving bin, the driving ring is connected with the ceramic bead, the ceramic bead is located between the driving ring and the driving bin, and one end of the driving cylinder away from the driving frame is fixedly connected with one end of the driving ring.
[0008] Preferably, a connecting block is fixedly connected at the end of the pulling cylinder away from the cleaning block, and a cleaning mechanism is fixedly connected with the connecting block.
[0009] Preferably, the cleaning mechanism comprises a suction cylinder and a pushing block slidably connected with the inner wall of the suction cylinder, a pull rod is fixedly connected with one side surface of the pushing block, a driving rod is fixedly connected with one end of the pull rod away from the pushing block, one end of the driving rod is fixedly connected with the connecting block, a suction pipe and a conveying pipe are fixedly connected with the outer side of the suction cylinder, and the suction pipe is two.
[0010] Preferably, a rotating ring is rotatably connected with the inner wall of the annular groove, two symmetrically-distributed adsorption rings are fixedly connected with the outer side of the rotating ring, and a plurality of suction holes are formed in opposite sides of the two adsorption rings.
[0011] Preferably, two ends of the suction pipe away from the suction cylinder are respectively fixedly connected with the outer sides of the two adsorption rings, the suction pipe is in communication with the inner part of the adsorption ring, the suction pipe is in communication with the inner part of the suction cylinder, one end of the conveying pipe away from the suction cylinder is fixedly connected with a storage bin, the storage bin is located in the bearing table, and the conveying pipe is in communication with the inner parts of the suction cylinder and the storage bin.
[0012] Preferably, the electrically-conductive mechanism comprises two symmetrically-distributed electrically-conductive rods, a limiting ring is fixedly connected with the upper surface of the electrically-conductive rod, and two symmetrically-distributed supporting blocks are fixedly connected in the inner part of the limiting ring.
[0013] Preferably, two said support block opposite sides are jointly connected with a guide roller, the conductive rod away from the limit ring one end extends to the inside of the bearing platform.
[0014] Preferably, the bearing platform upper surface is fixedly installed with a coating mechanism, the coating mechanism is located at one side of one of the conductive mechanisms, and the fixing mechanism, the reciprocating mechanism and the driving mechanism are located between the two conductive mechanisms.
[0015] Preferably, the bearing platform side is provided with a pressing mechanism, the pressing mechanism is communicated with the inside of the coating mechanism, and the bearing platform upper surface is fixedly installed with a photoelectric switch.
[0016] Compared with the prior art, the present application provides a surface coating device for insulating cable wire production and processing, which has the following beneficial effects: 1. The present application, by setting the conductive mechanism, can drive the driving ring, and at the same time can make the copper wire produce joule heat, and then evaporate the moisture of the copper wire itself, to ensure the purpose of good copper wire and insulating material coating effect.
[0017] The present application, by setting the cleaning block and its own material, can use capillary effect to efficiently adsorb copper wire surface oil stains, and open pores allow airflow to penetrate, cooperate with the adsorption hole on the adsorption ring to realize the effect of material self-cleaning, ensure the purpose of persistent cleaning of oil stains and ensure good cleaning effect next time, and avoid the use of one-time cleaning material, so as to achieve the effects of good cleaning effect and resource saving.
[0018] The present application, by setting the reciprocating mechanism, can reciprocally pull the cleaning block, so that the reciprocating block cleans the copper wire surface oil stains for many times, and the pulling can make the cleaning block contact with the adsorption hole, so that the adsorption hole adsorbs the cleaning block, thereby achieving the effects of good cleaning effect and resource saving.
[0019] The present application, by setting the cleaning mechanism, can clean the oil stains on the cleaning block, and can realize the effect of quantitative feeding by reciprocating movement, thereby achieving the effects of resource saving, good cleaning effect and quantitative feeding.
[0020] The present application, by setting the photoelectric switch, can quantitatively supplement the insulating material, ensure the effect of insulating coating and the accuracy of material supplement, and thereby achieve the effects of quantitative feeding and good insulating coating effect.
[0021] The parts not involved in the device are the same as or can be realized by the prior art, the present application has the advantages of simple structure and convenient operation. BRIEF DESCRIPTION OF DRAWINGS
[0022] Figure 1The overall structure schematic diagram of the surface coating device for the production and processing of the insulated cable and wire is provided in the application; Figure 2 The structure enlarged schematic diagram of the surface coating device for the production and processing of the insulated cable and wire is provided in the application; Figure 3 The extrusion mechanism structure schematic diagram of the surface coating device for the production and processing of the insulated cable and wire is provided in the application; Figure 4 The coating mechanism structure schematic diagram of the surface coating device for the production and processing of the insulated cable and wire is provided in the application; Figure 5 The driving mechanism structure schematic diagram of the surface coating device for the production and processing of the insulated cable and wire is provided in the application; Figure 6 The conductive mechanism structure schematic diagram of the surface coating device for the production and processing of the insulated cable and wire is provided in the application; Figure 7 The reciprocating mechanism structure schematic diagram of the surface coating device for the production and processing of the insulated cable and wire is provided in the application; Figure 8 The fixed cylinder cross-section structure schematic diagram of the surface coating device for the production and processing of the insulated cable and wire is provided in the application; Figure 9 The fixed mechanism structure schematic diagram of the surface coating device for the production and processing of the insulated cable and wire is provided in the application; Figure 10 The driving cylinder structure schematic diagram of the surface coating device for the production and processing of the insulated cable and wire is provided in the application; Figure 11 The adsorption ring structure schematic diagram of the surface coating device for the production and processing of the insulated cable and wire is provided in the application; Figure 12 The suction hole structure schematic diagram of the surface coating device for the production and processing of the insulated cable and wire is provided in the application; Figure 13 The suction cylinder structure schematic diagram of the surface coating device for the production and processing of the insulated cable and wire is provided in the application.
[0023] As shown in the figure, 1 is a bearing table, 2 is a cladding mechanism, 3 is an extrusion mechanism, 4 is a conductive mechanism, 41 is a conductive rod, 42 is a limiting ring, 43 is a supporting block, 44 is a guide roller, 5 is a storage bin, 6 is a fixing mechanism, 61 is a fixing cylinder, 62 is a limiting sliding groove, 63 is a driving cylinder, 64 is a reciprocating groove, 65 is an annular groove, 7 is a reciprocating mechanism, 71 is a sliding groove, 72 is a fixed block, 73 is a sliding rod, 74 is a connecting block, 75 is a pulling cylinder, 76 is a driving frame, 77 is a limiting rod, 8 is a driving mechanism, 81 is a supporting frame, 82 is a driving bin, 83 is a driving ring, 84 is a ceramic bead, 9 is a cleaning mechanism, 91 is a driving rod, 92 is a pull rod, 93 is a suction cylinder, 94 is a conveying pipe, 941 is a suction pipe, 95 is a suction ring, 97 is a suction hole, 98 is a rotating ring, 99 is a pushing block, 12 is a cleaning block, and 13 is a photoelectric switch. DETAILED DESCRIPTION
[0024] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only some of the embodiments of the present application, not all the embodiments of the present application.
[0025] In the description of the present application, it should be understood that the terms "upper", "lower", "front", "back", "left", "right", "top", "bottom", "inner", "outer" and the like indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and therefore cannot be understood as indicating or implying that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the present application.
[0026] Embodiment: The surface cladding device for insulating cable wire production and processing, such as Figures 1-13As shown, including the load-bearing table 1, the load-bearing table 1 upper surface is fixedly installed with photoelectric switch 13, one side of the load-bearing table 1 is provided with extrusion mechanism 3, extrusion mechanism 3 is communicated with the inside of the cladding mechanism 2, the load-bearing table 1 upper surface is fixedly installed with cladding mechanism 2, cladding mechanism 2 is located at one of the electrically conductive mechanism 4 side, and the drive mechanism 8 fixedly installed on the upper surface of the load-bearing table 1, drive mechanism 8 includes support frame 81 and drive cartridge 82 through opening in the upper half of support frame 81, the aperture of drive cartridge 82 is greater than the aperture of drive cylinder 63, pull cylinder 75, so when the copper wire passes through the inside of drive cartridge 82, drive cylinder 63, pull cylinder 75, the copper wire can not contact with the inner wall of drive cartridge 82 and the aperture, so as to ensure that the copper wire can be located at the center point position of drive cartridge 82, so as to ensure the rotation stability of drive ring 83, the inner wall of drive cartridge 82 is rotatably connected with ceramic bead 84, ceramic bead 84 is made of ceramic material, which can achieve the effect of insulation, and can avoid the influence on the current and the rotation of drive ring 83, drive cartridge 82 is provided with drive ring 83, drive ring 83 is made of pure copper material, so as to ensure the rotation of drive ring 83, in turn can drive cylinder 63 rotates, drive ring 83 is connected with ceramic bead 84, ceramic bead 84 is located between drive ring 83 and drive cartridge 82, drive ring 83 and ceramic bead 84 are located in the inside of drive cartridge 82, there is an insulating layer between copper wire and drive ring 83, which avoids the contact between drive ring 83 and copper wire, in turn ensures the stable operation of drive ring 83; The driving mechanism 8 is provided with the fixed mechanism 6 on one side, the driving mechanism 8 is provided with the electrically conductive mechanism 4 on one side, and the fixed mechanism 6, the reciprocating mechanism 7 and the driving mechanism 8 are located between the two electrically conductive mechanisms 4; the electrically conductive mechanism 4 comprises two symmetrically distributed electrically conductive rods 41, the electrically conductive rod 41 extends to the inside of the bearing table 1 from one end away from the limiting ring 42, the upper surface of the electrically conductive rod 41 is fixedly installed with the limiting ring 42, the inside of the limiting ring 42 is fixedly installed with two symmetrically distributed supporting blocks 43, the opposite sides of the two supporting blocks 43 are jointly rotatably connected with the guide rollers 44, and the surfaces of the electrically conductive rod 41, the limiting ring 42 and the supporting block 43 are attached with an insulating layer, so that the safety in use can be ensured; only the contact surface of the guide roller 44 and the copper wire is not provided with an insulating layer, so that the electrification state can be ensured; the lower ends of the two electrically conductive rods 41 are respectively connected with positive and negative electrodes and are provided with alternating current, and the insulating layer and the positive and negative electrodes are prior art and will not be described here, and are not shown in the figure; and the copper wire between the two electrically conductive mechanisms 4 will heat after being electrified, so that the moisture and part of the water on the surface of the copper wire can be evaporated, so that the lamination effect with the insulating layer is good; the inside of the fixed mechanism 6 is provided with the reciprocating mechanism 7, the fixed mechanism 6 comprises a fixed cylinder 61 and two limiting sliding grooves 62 symmetrically formed in the inner wall of the fixed cylinder 61, the inside of the fixed cylinder 61 is rotatably connected with a driving cylinder 63, one end of the driving cylinder 63 away from a driving frame 76 is fixedly connected with one end of a driving ring 83, a reciprocating groove 64 is formed in the periphery of the driving cylinder 63, an annular groove 65 is formed in the end of the driving cylinder 63 away from the driving mechanism 8, a rotating ring 98 is rotatably connected with the inner wall of the annular groove 65, two symmetrically distributed adsorption rings 95 are fixedly installed on the outer side of the rotating ring 98, the outer side of the adsorption ring 95 is slidably connected with the inside of the driving frame 76 through a fixed rod, so that the adsorption ring 95 cannot rotate, the adsorption of the adsorption ring 95 is accurate, and the normal operation of the driving frame 76 is not affected; The opposite sides of the two adsorption rings 95 are provided with a plurality of suction holes 97, the reciprocating mechanism 7 comprises a pulling cylinder 75, the end of the pulling cylinder 75 away from the cleaning block 12 is fixedly installed with a connecting block 74, the connecting block 74 is fixedly connected with the cleaning mechanism 9, the cleaning mechanism 9 comprises a suction cylinder 93 and a pushing block 99 slidably connected with the inner wall of the suction cylinder 93, the surface of one side of the pushing block 99 is fixedly installed with a pulling rod 92, one end of the pulling rod 92 away from the pushing block 99 is fixedly connected with a driving rod 91, one end of the driving rod 91 is fixedly connected with the connecting block 74, a suction pipe 941 and a conveying pipe 94 are fixedly installed on the outer side of the suction cylinder 93, one end of the conveying pipe 94 away from the suction cylinder 93 is fixedly connected with the storage bin 5, the storage bin 5 is cleaned regularly, so that the cleanliness of the storage bin 5 is ensured, and the way of cleaning the storage bin 5 is prior art and will not be described here, the storage bin 5 is located in the inside of the bearing table 1, the conveying pipe 94 is in communication with the inside of the suction cylinder 93 and the storage bin 5, the two suction pipes 941 are respectively fixedly connected with the outer sides of the two adsorption rings 95 away from the suction cylinder 93, and the suction pipe 941 is in communication with the inside of the adsorption ring 95, the suction pipe 941 is in communication with the inside of the suction cylinder 93. The outer surface of the pulling cylinder 75 is provided with two symmetrically distributed sliding grooves 71, the sliding grooves 71 are internally slidably connected with sliding rods 73, one end of the sliding rods 73 is fixedly installed with fixed blocks 72, one side of the fixed blocks 72 is fixedly connected with one end of the fixed cylinder 61, one end of the pulling cylinder 75 is fixedly connected with the cleaning blocks 12, in order to show the connection relationship between the cleaning blocks 12 and each part, the cleaning blocks 12 are reduced, the cleaning blocks 12 are two, the two cleaning blocks 12 form a circular ring, and the aperture is equal to the aperture of the pulling cylinder 75 and the driving cylinder 63, the cleaning blocks 12 are made of polypropylene, the porous structure characteristics of polypropylene material can form capillary adsorption effect, the oil absorption capacity is high, and the airflow can pass through, so as to ensure that the oil stains on the copper wire and the oil stains on the cleaned self are cleaned by the airflow, one end of the pulling cylinder 75 is fixedly installed with two symmetrically distributed driving frames 76, two symmetrically distributed limiting rods 77 are installed through the end of the driving frame 76 away from the pulling cylinder 75, one end of the limiting rod 77 extends into the driving frame 76 and is slidably connected with the inner wall of the reciprocating groove 64, the other end of the limiting rod 77 is slidably connected with the inner wall of the limiting sliding groove 62, the cleaning blocks 12 are located between the two driving frames 76, and the cleaning blocks 12 are slidably connected with the inner wall of the driving cylinder 63; The fixed mechanism 6, the reciprocating mechanism 7, the driving mechanism 8 and the cleaning mechanism 9 are made of polyformaldehyde material, so as to ensure that the current has no influence and the use is safe; The conveying pipe 94 and the suction pipe 941 are on the same vertical horizontal line, and the connection positions of the conveying pipe 94 and the suction pipe 941 with the suction cylinder 93 are all provided with one-way valves, when the oil stains on the cleaning blocks 12 are cleaned, the one-way valve on the suction pipe 941 is opened, and the one-way valve on the conveying pipe 94 is closed, at this time, the oil stains can be adsorbed into the inside of the suction cylinder 93, when the pull rod 92 moves towards the inside of the suction cylinder 93, the one-way valve on the suction pipe 941 is closed, and the one-way valve on the conveying pipe 94 is opened, so that the pull rod 92 can push the push block 99 to push the oil stains in the suction cylinder 93 into the inside of the conveying pipe 94, and then flow into the storage bin 5; The driving rod 91 reciprocally moves once, the copper wire moves a certain distance, at the same time, the insulating material outputs a corresponding amount of material, and the swing of the driving rod 91 can shield the photoelectric switch 13, the photoelectric switch 13 triggers the PLC counter, when the number reaches the set value of the PLC counter, the PLC counter outputs a signal to trigger the contactor, and then the feeding motor is started, so as to complete the quantitative feeding, when the motor runs to the set time, the time relay disconnects the contactor, the motor stops running, and the feeding stops, the PLC counter, the contactor, the motor and the time relay are prior art, which will not be described here, and are not shown in the figure, the photoelectric switch 13 is prior art, which will not be described here; Compared with the prior art: The oil stain cleaning of the existing cable processing equipment depends on manual wiping or disposable adsorption material, the polypropylene porous structure is adopted in the cleaning block 12, the capillary effect is utilized to adsorb the oil stain on the surface of the copper wire, the open pores of the cleaning block 12 allow airflow to penetrate, the self-cleaning effect of the material is realized by cooperating with the suction holes 97 on the adsorption ring 95, meanwhile, the combination of the reciprocating mechanism 7 and the cleaning mechanism 9 can drive the pushing block 99 in the suction cylinder 93 to move through the reciprocating movement of the driving rod 91, the on-off of the suction pipe 941 and the conveying pipe 94 is controlled through the one-way valve, and the cleaning can be completed without disassembly; In the prior art, the feeding is mostly monitored manually or by independent sensors, and the present application realizes accurate feeding by the combination of the movement of the driving rod 91 and the photoelectric switch 13, the reciprocating swing of the driving rod 91 can trigger the photoelectric switch 13, the swing times are recorded by the PLC counter, the feeding motor is automatically started when the set threshold is reached, and the feeding amount is controlled by cooperating with the time relay, the present application can convert mechanical movement into control signals, and the additional encoder or metering mechanism is omitted, so that the structure is simplified and the feeding accuracy is improved; In the prior art, the cable processing dehumidification mostly depends on external heating elements, such as heating plates, resistance wires or hot air devices, and the present application adopts the copper wire power heating mode, the guide roller 44 of the conductive mechanism 4 directly contacts and conducts electricity with the copper wire, the copper wire itself is heated by resistance power, because alternating current passing through the copper wire will generate Joule heat, the Joule heat is the prior art, which is not described here, and then the copper wire surface moisture can be evaporated without additional external heating components, the conductive rod 41, the limiting ring 42 and other components are covered with an insulating layer, only the contact surface of the guide roller 44 is conductive, which ensures the heating efficiency and avoids current leakage and use safety, solves the problems of complex structure, large heat loss and use safety of traditional external heating devices, and further improves the combination effect of the insulating layer and the copper wire.
[0027] Working principle: when the copper wire is coated with an insulating layer, first of all, the copper is put down from the reel, passes through the flattening device to the coating mechanism, at this time the copper wire enters the inside of the limiting ring 42 on the conductive mechanism 4, and at the same time contacts the guide roller 44, at this time the guide roller 44 can be pulled by the movable copper wire to avoid friction between the copper wire and the guide roller 44, which can cause scratches on the surface of the copper wire. When the metal copper contacts the two guide rollers 44, the conductive rod 41 is electrified and in an alternating current state, at this time one of the conductive rods 41 is positive and the other is negative, and the copper wire between the two conductive rods 41 is the connecting wire between the two conductive rods 41. At the same time, the copper wire continues to move forward, the drive ring 83 is affected by the magnetic wire, the drive ring 83 starts to rotate, at the same time the drive cylinder 63 is driven, the drive cylinder 63 starts to rotate, the limiting rod 77 can slide relatively on the reciprocating groove 64, when the limiting rod 77 slides along the reciprocating groove 64, the limiting rod 77 can generate a pushing force on the drive frame 76, so that the drive frame 76 starts to move, at the same time the limiting rod 77 slides on the limiting sliding groove 62, the movement of the drive frame 76 can push the pulling cylinder 75, at this time the pulling cylinder 75 is pushed away from the inside of the fixed cylinder 61, at the same time, the pulling cylinder 75 can pull the cleaning block 12, and the pulling cylinder 75 can pull the drive rod 91 through the connecting block 74, when the drive rod 91 starts to move, the pull rod 92 starts to move away from the inside of the suction cylinder 93, at this time the pull rod 92 can pull the push block 99 to move, the movement of the push block 99 can suck air to the suction ring 95 through the suction pipe 941, at the same time the suction ring 95 transmits the suction force to the suction hole 97, at this time the cleaning block 12 moves out of the inside of the drive cylinder 63, at this time the suction hole 97 can suck the cleaning block 12, because the cleaning block 12 continues to move outward, so the suction hole 97 can continuously suck the cleaning block 12, so as to ensure the cleanliness of the cleaning block 12 and the cleanliness of the next wiping, at the same time the oil stains flow from the inside of the suction ring 95 to the inside of the suction pipe 941, and can enter the inside of the suction cylinder 93, when the reciprocating groove 64 continues to rotate, the limiting rod 77 continues to slide on the reciprocating groove 64, at this time, the limiting rod 77 can pull the drive frame 76, and the limiting rod 77 slides on the limiting sliding groove 62, by pulling the drive frame 76, the pulling cylinder 75 can move to the inside of the fixed cylinder 61, the movement of the pulling cylinder 75 can make the slide rod 73 slide in the sliding groove 71, at the same time the pulling cylinder 75 drives the connecting block 74 to move, and the movement of the connecting block 74 can push the drive rod 91, when the drive rod 91 is pushed, the pull rod 92 starts to move to the inside of the suction cylinder 93, at the same time the push block 99 slides in the suction cylinder 93, and can push the oil stains into the conveying pipe 94, through the transmission of the conveying pipe 94, the oil stains can flow into the storage bin 5, so as to complete the cleaning of the metal copper, at the same time the reciprocating movement of the drive rod 91 can trigger the photoelectric switch 13, when the count reaches the set value, the feeding mechanism automatically feeds, so as to ensure timely and quantitative feeding,The operation of the extruding mechanism 3 can make the insulating material enter the inside of the covering mechanism 2, and the copper wire in the inside of the covering mechanism 2 can be attached to the insulating material, so that the covering is completed.
[0028] The above merely provides the preferred embodiments of the present application, but the protection scope of the present application is not limited thereto, and any person skilled in the art, according to the technical scheme and the inventive concept of the present application, can make equivalent replacement or change within the technical range disclosed by the present application, which should be covered in the protection scope of the present application.
Claims
1. A surface coating device for the production and processing of insulated cables and wires, comprising a support platform (1) and a drive mechanism (8) fixedly installed on the upper surface of the support platform (1), characterized in that, A fixing mechanism (6) is provided on one side of the driving mechanism (8), a conductive mechanism (4) is provided on one side of the driving mechanism (8), and a reciprocating mechanism (7) is provided inside the fixing mechanism (6). The fixing mechanism (6) includes a fixing cylinder (61) and two limiting grooves (62) symmetrically opened on the inner wall of the fixing cylinder (61). A driving cylinder (63) is rotatably connected inside the fixing cylinder (61). A reciprocating groove (64) is opened on the periphery of the driving cylinder (63). An annular groove (65) is opened at the end of the driving cylinder (63) away from the driving mechanism (8). The reciprocating mechanism (7) includes a pull cylinder (75), on the outer surface of the pull cylinder (75) are two symmetrically distributed sliding grooves (71), a sliding rod (73) is slidably connected inside the sliding groove (71), a fixing block (72) is fixedly installed at one end of the sliding rod (73), one side of the fixing block (72) is fixedly connected to one end of the fixing cylinder (61), a cleaning block (12) is fixedly connected to one end of the pull cylinder (75), two symmetrically distributed drive frames (76) are fixedly installed at one end of the pull cylinder (75), two symmetrically distributed limiting rods (77) are installed through the end of the drive frame (76) away from the pull cylinder (75), one end of the limiting rod (77) extends into the inside of the drive frame (76) and slides against the inner wall of the reciprocating groove (64), and the other end of the limiting rod (77) slides against the inner wall of the limiting sliding groove (62); The cleaning block (12) is located between the two drive frames (76), and the cleaning block (12) slides against the inner wall of the drive cylinder (63).
2. The surface coating device for the production and processing of insulated cables and wires according to claim 1, characterized in that, The drive mechanism (8) includes a support frame (81) and a drive chamber (82) that passes through the upper half of the support frame (81). A ceramic bead (84) is rotatably connected to the inner wall of the drive chamber (82). A drive ring (83) is provided inside the drive chamber (82). The drive ring (83) is rotatably connected to the ceramic bead (84). The ceramic bead (84) is located between the drive ring (83) and the drive chamber (82). The end of the drive cylinder (63) away from the drive frame (76) is fixedly connected to one end of the drive ring (83).
3. The surface coating device for manufacturing and processing insulated cables and wires according to claim 1, characterized in that, A connecting block (74) is fixedly installed at the end of the pull tube (75) away from the cleaning block (12), and a cleaning mechanism (9) is fixedly connected to the connecting block (74).
4. The surface coating device for manufacturing and processing insulated cables and wires according to claim 3, characterized in that, The cleaning mechanism (9) includes a suction cylinder (93) and a push block (99) that slides against the inner wall of the suction cylinder (93). A pull rod (92) is fixedly installed on one side surface of the push block (99). A drive rod (91) is fixedly connected to one end of the pull rod (92) away from the push block (99). One end of the drive rod (91) is fixedly connected to the connecting block (74). A suction tube (941) and a delivery tube (94) are fixedly installed on the outside of the suction cylinder (93). There are two suction tubes (941).
5. The surface coating device for manufacturing and processing insulated cables and wires according to claim 4, characterized in that, The inner wall of the annular groove (65) is rotatably connected to a rotating ring (98), and two symmetrically distributed adsorption rings (95) are fixedly installed on the outer side of the rotating ring (98). Several adsorption holes (97) are opened on the opposite sides of the two adsorption rings (95).
6. The surface coating device for the production and processing of insulated cables and wires according to claim 5, characterized in that, The two straws (941) are fixedly connected to the outside of the two adsorption rings (95) at the ends away from the suction cylinder (93), and the straws (941) are connected to the inside of the adsorption rings (95) and the inside of the suction cylinder (93). The delivery pipe (94) is fixedly connected to a storage chamber (5) at the end away from the suction cylinder (93). The storage chamber (5) is located inside the support platform (1). The delivery pipe (94) is connected to the inside of the suction cylinder (93) and the storage chamber (5).
7. The surface coating device for manufacturing and processing insulated cables and wires according to claim 1, characterized in that, The conductive mechanism (4) includes two symmetrically distributed conductive rods (41), and a limiting ring (42) is fixedly installed on the upper surface of the conductive rods (41). Two symmetrically distributed support blocks (43) are fixedly installed inside the limiting ring (42).
8. The surface coating device for manufacturing and processing insulated cables and wires according to claim 7, characterized in that, The two support blocks (43) are rotatably connected to guide rollers (44) on opposite sides, and the conductive rod (41) extends into the interior of the load-bearing platform (1) from the end away from the limiting ring (42).
9. The surface coating device for manufacturing and processing insulated cables and wires according to claim 1, characterized in that, The upper surface of the support platform (1) is fixedly installed with a covering mechanism (2). The covering mechanism (2) is located on one side of one of the conductive mechanisms (4), and the fixing mechanism (6), the reciprocating mechanism (7) and the driving mechanism (8) are all located between the two conductive mechanisms (4).
10. The surface coating device for manufacturing and processing insulated cables and wires according to claim 9, characterized in that, A squeezing mechanism (3) is provided on one side of the load-bearing platform (1). The squeezing mechanism (3) is internally connected to the covering mechanism (2). A photoelectric switch (13) is fixedly installed on the upper surface of the load-bearing platform (1).