Rubber tube forming all-in-one machine
By designing a rubber tube forming integrated machine with multiple functional mechanisms, the problems of insufficient mixing uniformity and uneven wall thickness in composite rubber tube forming are solved, and efficient and uniform forming of rubber tubes are achieved.
Patent Information
- Application Number
- CN202510431550.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-08
- Publication Date
- 2025-05-06
- Estimated Expiration
- 2045-04-08
AI Technical Summary
The existing rubber pipe forming integrated machine can easily lead to insufficient mixing uniformity and uneven forming of rubber pipe wall thickness during the composite rubber pipe forming process.
A rubber tube forming integrated machine including an extrusion mechanism, a placement mechanism, a vulcanization and shaping mechanism, a limiting and trimming mechanism and a rotary winding mechanism are designed. Through the coordinated work of these mechanisms, sealing, heat-setting, winding limit, wall thickness trimming and multiple stirring of the rubber tube is achieved to ensure the uniformity and wall thickness consistency of the rubber tube.
Through the use of this integrated machine, the winding uniformity of the composite rubber tube is significantly improved, the problems of insufficient mixing uniformity and uneven wall thickness forming are prevented, and the preparation quality and finished product performance of the rubber tube are improved.
Smart Images

Figure CN119928323A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of rubber tube molding, in particular to an integrated rubber tube molding machine. Background Art
[0002] The existing rubber tube molding machine heats the mixed rubber to 110-140°C and extrude it through a head mold and a screw to form a continuous tube blank. However, for composite rubber tube molding, the composite materials will be mixed during the mixing stage. Due to the diversity of materials, the materials are prone to form an "island structure" in the internal mixer, resulting in insufficient mixing uniformity. In addition, the traditional rubber tube molding machine is too dependent on the mold shape when molding the rubber tube. Therefore, during the rubber tube molding stage, it is easy to cause uneven wall thickness molding of the rubber tube.
[0003] To this end, we propose a rubber tube forming all-in-one machine. Summary of the invention
[0004] In order to solve the above technical problems, the present invention provides the following technical solutions: A rubber tube forming integrated machine, comprising: an extrusion mechanism, and also comprising: A placing mechanism is installed between the extrusion mechanisms, and the top two ends of the placing mechanism are connected to vulcanizing and shaping mechanisms. The vulcanizing and shaping mechanisms cooperate with the extrusion mechanism to seal and heat-set the rubber tube. The vulcanizing and shaping mechanisms are also used to press and shape the rubber tube after winding. The center rotation of the placing mechanism is connected to the limiting and trimming mechanism. The limiting and trimming mechanism is used to limit the winding of the rubber. The limiting and trimming mechanism is also used to trim the wall thickness of the rubber tube after winding. A rotating winding mechanism is provided on the outside of the limiting and trimming mechanism. The rotating winding mechanism is connected to the middle position of the placing mechanism. The rotating winding mechanism is used to receive the hot-melt rubber output by the extrusion mechanism and continuously heat the hot-melt rubber. Through the extrusion and rotation of the rotating winding mechanism, the rubber material is wound on the outer wall of the limiting and trimming mechanism in a silk thread state.
[0005] As a preferred solution of the rubber tube forming integrated machine described in the present invention, wherein: the placing mechanism comprises: a placing component; The placement components are placed at the front and rear ends of the extrusion mechanism surface, a support component is arranged in the middle of the placement components, and a driving component is installed at the upper end and the lower end between the two groups of support components.
[0006] As a preferred solution of the rubber tube forming integrated machine described in the present invention, wherein: the placement component includes: a placement plate; The placement plate is placed at both ends of the surface of the extrusion mechanism, the surface of the placement plate is rotatably connected to the first bidirectional screw, the right end of the outer wall of the placement plate is installed with a first motor, and the output end of the first motor is connected to the right port of the first bidirectional screw; The support assembly includes: a first support frame; The first support frame is installed in the middle position of the placement plate, and the second support frame is installed on the top of the first support frame; The drive assembly includes: a drive box; The drive box is installed between the front and rear first support frames. The surface of the first support frame is rotatably connected to the first screw rod. A second motor is installed at the front end of the drive box. The output end of the second motor is connected to the front side port of the first screw rod.
[0007] As a preferred solution of the rubber tube forming integrated machine described in the present invention, wherein: the vulcanization and shaping mechanism includes: a vulcanization mechanism; The vulcanizing mechanism is connected to the top two ends of the placement component, and the shaping component is installed inside the vulcanizing mechanism.
[0008] As a preferred solution of the rubber tube forming integrated machine described in the present invention, the vulcanization mechanism includes: a slide plate; The slide plate is slidably connected to the two ends of the surface of the placement plate, the middle of the bottom of the slide plate is threadedly connected to the outer wall of the first bidirectional screw, a support rod is provided on the top of the slide plate, a vulcanized arc plate is installed on the top of the support rod, a third motor is installed on the rear end of the outer wall of the vulcanized arc plate, two groups of slide grooves are provided in the middle of the inner wall of the vulcanized arc plate, a second screw is provided between the two groups of slide grooves, and the second screw is rotatably connected to the middle position of the vulcanized arc plate; The shaping component comprises: a movable plate; Slide blocks are provided at both ends of the outer wall of the movable plate, and the slide blocks are slidably connected to the inside of the slide groove. A first internal thread block is provided in the middle of the outer wall of the movable plate, and the inside of the first internal thread block is threadedly connected to the outer wall of the second screw rod. A telescopic box is provided on the inner wall of the movable plate, and a main driving telescopic rod is installed in the middle of the inside of the telescopic box, and auxiliary telescopic rods are installed at both ends of the inside of the telescopic box. The output ends of the main driving telescopic rod and the auxiliary telescopic rod are connected to the left end of the outer wall of the shaping arc plate, and shaping cutters are provided at the front and rear ends of the shaping arc plate.
[0009] As a preferred solution of the rubber tube forming integrated machine described in the present invention, the limiting and trimming mechanism includes: a limiting component; The limit assembly is rotatably connected to the center position between the two sets of second support frames, the upper and lower ends of the limit assembly are equipped with moving assemblies, the middle of the limit assembly is equipped with a supporting circle assembly, and the outer wall of the limit assembly is slidably connected to the finishing assembly.
[0010] As a preferred solution of the rubber tube forming integrated machine described in the present invention, the limiting component includes: a limiting plate; The limit plate is rotatably connected to the center position of the second support frame, the limit plate is arranged in two groups, a limit shaft rod is arranged between the two groups of limit plates, limit grooves are arranged around the outer surface of the limit shaft rod, limit rods are installed inside the limit grooves at the left and right ends, and an arc groove is arranged in the middle of the outer wall of the limit shaft rod; The moving assembly includes: a third screw and a fourth motor; The third screw is provided with two groups, one group is rotatably connected to the inside of the upper end limiting groove, and the other group is rotatably connected to the inside of the lower end limiting groove, the rear side port of the third screw is connected to the first gear, the fourth motor is installed at the center position of the rear end limiting disk, the output end of the fourth motor is connected to the second gear, the second gear is arranged in the middle of the rear end limiting disk, the upper end and the lower end of the outer wall of the second gear are meshedly connected with the third gear, the front end of the third gear is connected to the fourth gear, and the outer wall of the fourth gear is meshedly connected with the outer wall of the first gear; The circle support assembly comprises: a hollow tube; The hollow tube is fixedly installed in the middle position of the inner part of the limiting shaft rod, the inner part of the hollow tube is rotatably connected to the second bidirectional screw, the two ends of the second bidirectional screw are rotatably connected to the two ends of the limiting shaft rod, the front end of the second bidirectional screw is connected to the output end of the motor, and the motor is installed in the center of the front end limiting disk, a supporting arc plate is provided on the outer side of the hollow tube, the supporting arc plate is slidably connected to the inside of the arc groove, the two ends around the outer wall of the hollow tube are rotatably connected to one end of the first support rod, the other end of the first support rod is rotatably connected to the inner wall of the supporting arc plate, the movable shaft block is threadedly connected to the two ends of the outer wall of the second bidirectional screw, the outer wall of the movable shaft block is rotatably connected to the rotating ring, the outer wall of the rotating ring is rotatably connected to one end of the second support rod, and the other end of the second support rod is rotatably connected to the inner wall of the supporting arc plate; The trimming assembly includes: a trimming ring; A trimming ring is arranged on the outer wall of the limiting shaft rod, a trimming cutter is arranged at the front end of the outer wall of the trimming ring, a second internal thread block is arranged at the upper and lower ends of the inner wall of the trimming ring, the second internal thread block is slidably connected to the inside of the limiting grooves at the upper and lower ends, the inner wall of the second internal thread block is threadedly connected to the outer wall of the third screw rod, a limiting block is arranged at the left and right ends of the inner wall of the trimming ring, the limiting block is slidably connected to the inside of the limiting grooves at the left and right ends, and the inside of the limiting block is slidably connected to the outer wall of the limiting rod.
[0011] As a preferred solution of the rubber tube forming integrated machine described in the present invention, wherein: the rotating winding mechanism comprises: a movable component; The movable component is slidably connected to the bottom of the upper drive box, the bottom of the movable component is installed with a guide component, the bottom of the guide component is slidably connected to the top of the lower drive box, the rear end of the guide component is rotatably connected to the rotating component, the inside of the rotating component is installed with a stirring component around, the upper end of the inside of the rotating component is installed with a winding component, the rear end of the winding component is installed with an external component, the driving end of the external component is in contact with the rear end of the inner wall of the guide component, the left side of the rear end of the external component is installed, and the right side of the rear end of the external component is provided with a shearing component.
[0012] As a preferred solution of the rubber tube forming integrated machine described in the present invention, wherein: the movable component comprises: a third internal thread block; The third internal thread block is slidably connected to the interior of the upper end driving box, the interior of the third internal thread block is connected to the outer wall of the first screw, the bottom end of the third internal thread block is rotatably connected to the rotating gear, the lower end of the rotating gear is connected to the guide assembly, the front end of the third internal thread block is installed with an extension block, the extension block is slidably connected to the interior of the driving box, a placement plate is provided at the bottom of the extension block, a fifth motor is installed at the bottom of the placement plate, the output end of the fifth motor is connected to the driving gear, the driving gear is rotatably connected to the bottom of the placement plate, the rear end of the bottom of the placement plate is rotatably connected to the follower gear, the front end of the follower gear is meshed and connected to the driving gear, and the rear end of the follower gear is meshed and connected to the rotating gear; The guide assembly comprises: a guide plate; The top of the guide plate is connected to the rotating gear, the lower end of the guide plate is equipped with a sliding block, the sliding block is connected to the driving end of the lower end driving assembly, the rear end surface of the guide plate is provided with an inner groove, the rear end of the inner wall of the inner groove is provided with a first tooth, the upper and lower sides of the inner wall of the rear end of the inner groove are provided with a rotating slot, the front end of the first tooth is provided with a baffle, and the rear end of the inner wall of the guide plate is provided with a second tooth; The rotating assembly comprises: a rotating disk; Rotating blocks are provided on both sides of the rear end surface of the rotating disk, and the rotating blocks are rotatably connected to the inside of the rotating slot. A convex ring is provided in the middle of the rear end surface of the rotating disk, and the convex ring passes through the inner slot. The rear end of the convex ring is connected to the front end of the external component. The stirring assembly comprises: a stirring shaft; The stirring shaft is rotatably connected around the front end of the convex ring, the stirring shaft is inserted into the inner groove, stirring blades are arranged around the front end of the outer wall of the stirring shaft, and a fifth gear is arranged at the rear end of the stirring blade. The outer wall of the fifth gear is meshed with the first tooth.
[0013] As a preferred solution of the rubber tube forming integrated machine described in the present invention, the winding assembly includes: a material receiving box; A material receiving box is installed on the rear side of the upper end of the convex ring, a side plate is installed at the rear end of the material receiving box, the side plate is installed on the upper end of the convex ring surface, a sixth motor is installed at the left end of the rear end of the side plate, a storage box is installed at the rear end of the side plate, an output box is installed at the rear end of the storage box, an extrusion port is provided at the right end of the output box, the output box is rotatably connected to the output screw rod, a seventh motor is installed at the left end of the outer wall of the output box, the output end of the seventh motor is connected to the left port of the output screw rod, the inside of the material receiving box is rotatably connected to the conical screw rod, the rear end of the conical screw rod is rotatably connected to the conveying screw rod, and the conveying screw rod is connected to the output end of the sixth motor through a sprocket and a sprocket; The external components include: an external arc plate; The external arc plate is installed at the rear end of the convex ring, and the upper end of the left side of the rear end of the external arc plate is installed with an eighth motor, the output end of the eighth motor is connected to the external gear, and the outer wall of the external gear is meshed with the second tooth; The pressing assembly includes: a ninth motor; The ninth motor is installed on the left side of the rear end of the external arc plate, and the output end of the ninth motor is connected to the rotating rod. The front and rear ends of the rotating rod are equipped with arc-shaped telescopic rods, and the output end of the arc-shaped telescopic rod is connected to the limited pressing roller.
[0014] Compared with existing technologies: Through the coordination of the movable components, the guide components, the rotating components, several groups of winding components and the external components, the rubber raw materials or other composite materials can be distinguished, so that the rubber raw materials or other composite materials can be prepared into rubber tubes by means of oblique winding and interweaving, thereby increasing the winding uniformity of the composite rubber tube and preventing the generation of sea island structures due to insufficient mixing uniformity of the composite rubber material; Through the coordination of the guide component, the rotating component, the stirring component and the external component, the rubber raw material and the other composite materials injected into the guide component can be stirred multiple times, so that the hot melt state of the raw material is more delicate and lubricated, the generation of particle bubbles is prevented, and the preparation quality of the rubber tube is improved; Through the cooperation of the shaping component, the rounding component and the trimming component, the wall thickness of the rubber tube can be trimmed and adjusted to make the rubber wall thickness relatively uniform and the rubber wall thickness size fixed, thereby preventing the occurrence of uneven wall thickness molding of the rubber tube. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 A schematic diagram of the overall structure provided by the present invention; Figure 2 A schematic diagram of the main opening and closing structure of the rubber tube forming integrated machine provided by the present invention; Figure 3 A schematic diagram of the connection structure of the placement mechanism provided by the present invention; Figure 4 A rear view structural diagram of the vulcanization and shaping mechanism provided by the present invention; Figure 5 A schematic diagram of the structure of the shaping component provided by the present invention; Figure 6 A schematic diagram of the structure of the limiting and trimming mechanism provided by the present invention; Figure 7 A schematic diagram of the disassembled structure of the limiting and trimming mechanism provided by the present invention; Figure 8 A schematic diagram of the structure of the limit assembly provided by the present invention; Fig. 9 A schematic diagram of the structure of the mobile assembly provided by the present invention; Fig.10 A schematic diagram of the support assembly structure provided by the present invention; Fig.11 A schematic diagram of the structure of the movable shaft block provided by the present invention; Fig.12 A schematic diagram of the placement structure of the trimming assembly provided by the present invention; Fig.13 A schematic diagram of the structure of the trimming assembly provided by the present invention; Fig.14 A schematic diagram of the split structure of the rotary winding mechanism provided by the present invention from the right side; Fig.15 A schematic diagram of the connection structure between the movable component and the guide component provided by the present invention; Fig.16 A schematic diagram of the structure of the active components provided by the present invention; Fig.17 A schematic cross-sectional structural diagram of a guide assembly provided by the present invention; Fig.18 A schematic diagram of the structure of the rotating assembly provided by the present invention; Fig.19 A schematic diagram of the main structure of the rotating assembly provided by the present invention; Fig. 20 A schematic diagram of the structure of the stirring assembly provided by the present invention; Fig.21 A schematic diagram of the rear view split structure of the winding assembly provided by the present invention; Fig. 22 A schematic diagram of the main split structure of the winding assembly provided by the present invention; Fig.23 A schematic diagram of the structure of an external component provided by the present invention; Fig.24 This is a schematic diagram of the structure of the pressing assembly provided by the present invention.
[0016] In the figure: Extrusion mechanism 1, placement mechanism 2, placement component 21, placement plate 211, first bidirectional screw 212, first motor 213, support component 22, first support frame 221, second support frame 222, drive component 23, drive box 231, first screw 232, second motor 233, vulcanization and shaping mechanism 3, vulcanization mechanism 31, slide plate 311, support rod 312, vulcanization arc plate 313, third motor 314, slide 315, second screw 316, shaping component 32, movable plate 321, slider 322, first internal thread block 323, telescopic box 324, main Driving telescopic rod 325, auxiliary telescopic rod 326, shaping arc plate 327, shaping cutter 328, limiting and trimming mechanism 4, limiting assembly 41, limiting plate 411, limiting shaft rod 412, limiting groove 413, limiting rod 414, arc groove 415, moving assembly 42, third screw rod 421, first gear 422, fourth motor 423, second gear 424, third gear 425, fourth gear 426, supporting circle assembly 43, hollow tube 431, second bidirectional screw rod 432, supporting arc plate 433, first supporting rod 434, movable shaft block 435, rotating ring 436, second Support rod 437, trimming assembly 44, trimming ring 441, trimming cutter 442, second internal thread block 443, limit block 444, rotating winding mechanism 5, movable assembly 51, third internal thread block 511, rotating gear 512, extension block 513, placement plate 514, fifth motor 515, driving gear 516, follower gear 517, guide assembly 52, guide plate 521, sliding block 522, inner groove 523, first tooth 524, rotating slot 525, baffle 526, second tooth 527, rotating assembly 53, rotating disk 531, rotating block 532, convex ring 533, stirring component 54, stirring shaft 541, stirring blade 542, fifth gear 543, winding component 55, material receiving box 551, side plate 552, sixth motor 553, storage box 554, output box 555, extrusion port 556, output screw rod 557, seventh motor 558, conical screw rod 559, conveying screw rod 5510, external component 56, external arc plate 561, eighth motor 562, external gear 563, pressing component 57, ninth motor 571, rotating rod 572, arc telescopic rod 573, limit pressing roller 574, shearing component 58. DETAILED DESCRIPTION
[0017] In order to make the objectives, technical solutions and advantages of the present invention more clear, the embodiments of the present invention will be further described in detail below with reference to the accompanying drawings.
[0018] The present invention provides a rubber tube forming integrated machine, please refer to Figure 1-Figure 24 , including an extrusion mechanism 1, a placement mechanism 2, a vulcanization and shaping mechanism 3, a limiting and trimming mechanism 4 and a rotating winding mechanism 5; The extrusion mechanism 1 is placed on the ground. The extrusion mechanism 1 can contact the vulcanization and shaping mechanism 3 by moving forward and backward, and the internal space of the vulcanization and shaping mechanism 3 is sealed. At the same time, the output end of the extrusion mechanism 1 can be connected to the motor at the front end of the supporting component 43, so that the extrusion mechanism 1 can drive the supporting component 43 to rotate, and the inside of the extrusion mechanism 1 can heat-melt the mixed rubber material, and inject the hot-melted rubber material into the internal front end of the guide plate 521 through a hose for storage; The placement mechanism 2 is installed between the extrusion mechanism 1, and the placement mechanism 2 includes: a placement component 21, a placement plate 211, a first bidirectional screw 212, a first motor 213, a support component 22, a first support frame 221, a second support frame 222, a drive component 23, a drive box 231, a first screw 232 and a second motor 233; the placement component 21 is placed at the front and rear ends of the surface of the extrusion mechanism 1, and the placement component 21 can block and limit the front and rear movement of the extrusion mechanism 1, and at the same time, the placement component 21 can install and drive the vulcanization and shaping mechanism 3, and the placement plate 211 is placed at both ends of the surface of the extrusion mechanism 1. The placement plate 211 can The movement of the extrusion mechanism 1 is blocked and limited. The surface of the placement plate 211 is rotatably connected to the first bidirectional screw 212. The right end of the outer wall of the placement plate 211 is installed with a first motor 213. The output end of the first motor 213 is connected to the right side port of the first bidirectional screw 212. The first motor 213 drives the first bidirectional screw 212 to rotate. The rotation of the first bidirectional screw 212 can drive the two sets of vulcanization and shaping mechanisms 3 to move closer to or away from each other. A support component 22 is arranged in the middle position of the placement component 21. The support component 22 can install and place the limiting and trimming mechanism 4, and the support component 22 is arranged as two sets. A group of support components 22 at the rear end are connected by snap fasteners, so that they can be disassembled, which is convenient for discharging the rubber on the outer wall of the limiting and trimming mechanism 4. The first support frame 221 is installed in the middle position of the placement plate 211. The first support frame 221 can support the second support frame 222 and the driving assembly 23. The second support frame 222 is installed on the top of the first support frame 221. The center of the second support frame 222 can install and limit the limiting and trimming mechanism 4. At the same time, the center position of the rear second support frame 222 is connected by snap fasteners. Through the detachability of the rear second support frame 222, the limiting and trimming mechanism The rubber tube after the outer wall is formed is unloaded, and the upper and lower ends between the two groups of support components 22 are both installed with a driving component 23, and the driving component 23 can drive the activity of the rotating winding mechanism 5, and the driving box 231 is installed between the front and rear groups of the first support frames 221, and the surface of the first support frame 221 is rotatably connected to the first screw 232, and the front end of the driving box 231 is installed with a second motor 233, and the output end of the second motor 233 is connected to the front side port of the first screw 232, and the first screw 232 can be driven to rotate by the drive of the second motor 233, and the rotating winding mechanism 5 can be driven to move by the rotation of the first screw 232; The vulcanizing and shaping mechanism 3 is connected to the top two ends of the placing mechanism 2. The vulcanizing and shaping mechanism 3 cooperates with the extruding mechanism 1 to seal and heat-set the rubber tube. The vulcanizing and shaping mechanism 3 is also used to press and shape the wound rubber tube. The vulcanizing and shaping mechanism 3 includes: a vulcanizing mechanism 31, a slide plate 311, a support rod 312, a vulcanizing arc plate 313, a third motor 314, a slide groove 315, a second screw rod 316, a shaping component 32, a movable plate 321, a slider 322, a first internal thread block 323, a telescopic box 324, a main driving telescopic rod 325, an auxiliary telescopic rod 326, a shaping arc plate 327 and a shaping cutter 328;The vulcanizing mechanism 31 is connected to the top two ends of the placement component 21. The vulcanizing mechanism 31 can perform a heat-setting operation on the rubber tube of the outer wall of the limiting and trimming mechanism 4. The slide plate 311 is slidably connected to the two ends of the surface of the placement plate 211. The middle of the bottom of the slide plate 311 is threadedly connected to the outer wall of the first bidirectional screw 212. Through the rotation of the first bidirectional screw 212, the two groups of slide plates 311 can be driven to move closer to or away from each other. A support rod 312 is provided on the top of the slide plate 311. A vulcanizing arc plate 313 is installed on the top of the support rod 312. A heating device is provided inside the vulcanizing arc plate 313. A heat focusing device is installed on the inner wall of the vulcanizing arc plate 313. The lens can focus the heat emitted by the heating device on the rubber tube of the outer wall of the limiting and trimming mechanism 4 through the heat focusing lens, and perform heat curing operation on the rubber tube. The rear end of the outer wall of the vulcanizing arc plate 313 is installed with a third motor 314, and the third motor 314 is connected to the rear port of the shaping component 32 through a steering gear. The shaping component 32 can be driven by the third motor 314. Two groups of slide grooves 315 are provided in the middle of the inner wall of the vulcanizing arc plate 313, and a second screw 316 is provided between the two groups of slide grooves 315. The second screw 316 is rotatably connected to the middle position of the vulcanizing arc plate 313. The interior of the vulcanizing mechanism 31 is installed with a plastic The shaping component 32 can shape and trim the outer wall of the rubber tube after the outer wall of the limiting and trimming mechanism 4 is wound. Slide blocks 322 are provided at both ends of the outer wall of the movable plate 321. The slide blocks 322 are slidably connected to the inside of the slide groove 315. A first internal thread block 323 is provided in the middle of the outer wall of the movable plate 321. The inside of the first internal thread block 323 is threadedly connected to the outer wall of the second screw rod 316. The movable plate 321 can be moved by rotating the second screw rod 316. A telescopic box body 324 is provided on the inner wall of the movable plate 321. A main driving telescopic rod 325 is installed in the middle of the telescopic box body 324. The telescopic box body 324 is provided with a main driving telescopic rod 325. Auxiliary telescopic rods 326 are installed at both ends of the interior of 4, and the output ends of the main driving telescopic rod 325 and the auxiliary telescopic rod 326 are connected to the left end of the outer wall of the shaping arc plate 327. The shaping arc plate 327 can be driven to perform telescopic operation through the driving of the main driving telescopic rod 325. At the same time, the auxiliary telescopic rod 326 can limit and guide the telescopic activity of the shaping arc plate 327. The shaping arc plate 327 is set to an arc shape, and the wound rubber tube can be pressed and shaped by the shaping arc plate 327. The front and rear ends of the shaping arc plate 327 are provided with shaping cutters 328, and the wall thickness of the rubber tube can be trimmed by the shaping cutter 328; The limiting and trimming mechanism 4 is connected to the center of the placing mechanism 2 for rotation. The limiting and trimming mechanism 4 is used to limit the winding of the rubber. The limiting and trimming mechanism 4 is also used to trim the wall thickness of the rubber tube after winding. The limiting and trimming mechanism 4 includes: a limiting component 41, a limiting plate 411, a limiting shaft rod 412, a limiting groove 413, a limiting rod 414, an arc groove 415, a moving component 42, a third screw rod 421, a first gear 422, a fourth motor 423, a second gear 424, a third gear 425, a fourth gear 426, a support circle component 43, a hollow tube 431, a second bidirectional screw rod 432, a support arc plate 433, a first support rod 434, a movable shaft block 435, a rotating ring 436, a second support rod 437, and a trimming component 4 4. Trimming ring 441, trimming cutter 442, second internal thread block 443 and limiting block 444; the limiting component 41 is rotatably connected to the center position between the two groups of second support frames 222, and the outer wall of the limiting component 41 can rotate to limit and guide the winding of the winding mechanism 5, and the limiting disk 411 is rotatably connected to the center position of the second support frame 222. The limiting disk 411 is arranged in two groups, and a limiting shaft rod 412 is arranged between the two groups of limiting disks 411. The outer surface of the limiting shaft rod 412 is provided with limiting grooves 413 around it, and limiting rods 414 are installed inside the limiting grooves 413 at the left and right ends. Through the cooperation of the limiting rod 414 and the limiting groove 413, the movement of the trimming component 44 can be limited and guided, and the outer wall of the limiting shaft rod 412 is provided with limiting grooves 413 around it. An arc groove 415 is provided in the middle, and a moving assembly 42 is installed at the upper and lower ends of the inner part of the limiting assembly 41, and the trimming assembly 44 can be driven by the moving assembly 42. The third screw rod 421 is provided with two groups, one group is rotatably connected to the inner part of the upper end limiting groove 413, and the other group is rotatably connected to the inner part of the lower end limiting groove 413. The rear side port of the third screw rod 421 is connected to the first gear 422, and the fourth motor 423 is installed at the center position of the rear end limiting disk 411. The output end of the fourth motor 423 is connected to the second gear 424, and the second gear 424 is arranged in the middle of the inner part of the rear end limiting disk 411. The upper end and the lower end of the outer wall of the second gear 424 are meshed and connected with the third gear 425, and the front end of the third gear 425 is connected to the fourth gear The outer wall of the fourth gear 426 is meshed with the outer wall of the first gear 422, and the second gear 424 can be driven to rotate by the fourth motor 423, so that the second gear 424 drives the third gear 425 and the fourth gear 426 to rotate, and then the fourth gear 426 drives the first gear 422 and the third screw 421 to rotate, and the rotation of the third screw 421 can drive the trimming component 44 to move, and the inner middle of the limiting component 41 is equipped with a supporting circle component 43, and the trimmed rubber tube can be supported and limited by the supporting circle component 43, and the hollow tube 431 is fixedly installed in the inner middle position of the limiting shaft 412, and the inner rotation of the hollow tube 431 is connected to the second bidirectional screw 432,The two ends of the second bidirectional screw 432 are rotatably connected to the two ends of the limiting shaft 412, the front end of the second bidirectional screw 432 is connected to the output end of the motor, and the motor is installed in the center of the front end limiting plate 411. A supporting arc plate 433 is provided on the outer side of the hollow tube 431, and the supporting arc plate 433 is slidably connected to the inside of the arc groove 415. The two ends around the outer wall of the hollow tube 431 are rotatably connected to one end of the first support rod 434, and the other end of the first support rod 434 is rotatably connected to the inner wall of the supporting arc plate 433. The movable shaft block 435 is threadedly connected to the two ends of the outer wall of the second bidirectional screw 432, and can be driven by the motor. The second bidirectional screw 432 rotates, and the rotation of the second bidirectional screw 432 can drive the two sets of movable shaft blocks 435 to move closer to or away from each other. The outer wall of the movable shaft block 435 is rotatably connected to the rotating ring 436. The outer wall of the rotating ring 436 is rotatably connected to one end of the second support rod 437. The other end of the second support rod 437 is rotatably connected to the inner wall of the supporting arc plate 433. Through the movement of the movable shaft block 435, the second support rod 437 is forced to arch the supporting arc plate 433, so that the supporting arc plate 433 supports the trimmed rubber tube to prevent the trimmed rubber tube from sagging downward due to gravity, causing the rubber tube to The outer wall of the limiting component 41 is slidably connected to the trimming component 44. The trimming component 44 can cut the wall thickness of the wound rubber tube by driving the moving component 42, so as to control the wall thickness of the rubber tube. The trimming ring 441 is arranged on the outer wall of the limiting shaft 412. The front end of the outer wall of the trimming ring 441 is provided with a trimming cutter 442. The trimming cutter 442 can be driven to trim and cut the wound rubber tube through the movement of the trimming ring 441, so as to trim the thickness of the inner wall of the rubber tube. The upper and lower ends of the inner wall of the trimming ring 441 are both provided with a second internal thread block 443. The second internal thread block 44 The inner wall of the second internal thread block 443 is threadedly connected to the outer wall of the third screw rod 421, and the rotation of the third screw rod 421 can drive the second internal thread block 443 and the trimming ring 441 to move. The left and right ends of the inner wall of the trimming ring 441 are provided with limit blocks 444, which are slidably connected to the inner wall of the limit grooves 413 at the left and right ends. The inner wall of the limit block 444 is slidably connected to the outer wall of the limit rod 414, and the cooperation between the limit block 444 and the limit rod 414 can limit and guide the sliding of the trimming ring 441. The rotating winding mechanism 5 is arranged on the outside of the limiting and trimming mechanism 4, and the rotating winding mechanism 5 is connected to the middle position of the placing mechanism 2. The rotating winding mechanism 5 is used to receive the hot melt rubber output by the extrusion mechanism 1 and continuously heat the hot melt rubber. Through the extrusion and rotation of the rotating winding mechanism 5, the rubber material is wound on the outer wall of the limiting and trimming mechanism 4 in a silk thread state. The rotating winding mechanism 5 includes: a movable component 51, a third internal thread block 511, a rotating gear 512, an extension block 513, a placement plate 514, a fifth motor 515, a driving gear 516, a follower gear 517, a guide component 52, a guide plate 521, a sliding block 522, an inner groove 523, a first tooth 524, a rotating slot 525, a baffle 526, and a first tooth 524. The second tooth 527, the rotating component 53, the rotating disk 531, the rotating block 532, the convex ring 533, the stirring component 54, the stirring shaft 541, the stirring blade 542, the fifth gear 543, the winding component 55, the material receiving box 551, the side plate 552, the sixth motor 553, the storage box 554, the output box 555, the extrusion port 556, the output screw rod 557, the seventh motor 558, the conical screw rod 559, the conveying screw rod 5510, the external component 56, the external arc plate 561, the eighth motor 562, the external gear 563, the pressing component 57, the ninth motor 571, the rotating rod 572, the arc telescopic rod 573, the limit pressing roller 574 and the shearing component 58; the movable component 51 is slidably connected to the upper end drive box 23 1, the movable component 51 can be driven to move by the driving component 23, and the guide component 52 can be driven to adjust the angle by the driving component 51, the third internal thread block 511 is slidably connected to the interior of the upper end driving box 231, the interior of the third internal thread block 511 is connected to the outer wall of the first screw rod 232, the bottom end of the third internal thread block 511 is rotatably connected to the rotating gear 512, and the lower end of the rotating gear 512 is connected to the guide component 52, the front end of the third internal thread block 511 is installed with an extension block 513, the extension block 513 is slidably connected to the interior of the driving box 231, the bottom of the extension block 513 is provided with a placement plate 514, the bottom of the placement plate 514 is installed with a fifth motor 515, and the output end of the fifth motor 515 The driving gear 516 is connected, and the driving gear 516 is rotatably connected to the bottom of the placement plate 514. The rear end of the bottom of the placement plate 514 is rotatably connected to the follower gear 517. The front end of the follower gear 517 is meshed and connected to the driving gear 516. The rear end of the follower gear 517 is meshed and connected to the rotating gear 512. The fifth motor 515 drives the driving gear 516 to rotate. The rotation of the driving gear 516 can drive the follower gear 517 to rotate. The rotation of the follower gear 517 can drive the rotating gear 512 to rotate, so that the rotating gear 512 drives the guide assembly 52 to adjust the angle. The bottom of the movable assembly 51 is installed with a guide assembly 52. The bottom of the guide assembly 52 is slidably connected to the top of the lower end driving box 231.The front end of the guide assembly 52 is connected to the discharge end of the extrusion mechanism 1 through a hose. The guide assembly 52 can receive and heat the rubber material extruded by the extrusion mechanism 1. The top of the guide disc 521 is connected to the rotating gear 512. The lower end of the guide disc 521 is equipped with a sliding block 522. The sliding block 522 is connected to the driving end of the lower end driving assembly 23. The guide disc 521 can be driven to move by the driving assembly 23. The rear end surface of the guide disc 521 is provided with an inner groove 523. The rear end of the inner wall of the inner groove 523 is provided with a first tooth 524. The upper and lower sides of the inner wall of the rear end of the inner groove 523 are provided with a rotating groove 525. The front end of the first tooth 524 is provided with a baffle 526. The rubber material discharged into the guide disc 521 can be controlled by the baffle 526. The guide plate 521 is provided with a second tooth 527 at the rear end of the inner wall of the guide plate 521. The rear end of the guide component 52 is rotatably connected to the rotating component 53. Rotating blocks 532 are provided on both sides of the rear end surface of the rotating plate 531. The rotating blocks 532 are rotatably connected to the inside of the rotating card slot 525. The rotation of the rotating plate 531 can be limited and guided by the cooperation of the rotating blocks 532 and the rotating card slot 525. A convex ring 533 is provided in the middle of the rear end surface of the rotating plate 531. The convex ring 533 penetrates the inner groove 523. The rear end of the convex ring 533 is connected to the front end of the external component 56. A stirring component 54 is installed around the inside of the rotating component 53. The stirring component 54 can be used to stir the inside of the guide component 52. The rubber material is rotated and stirred, the stirring shaft 541 is rotatably connected to the front end of the convex ring 533, the stirring shaft 541 is inserted into the inner groove 523, the front end of the outer wall of the stirring shaft 541 is provided with stirring blades 542, the rear end of the stirring blade 542 is provided with a fifth gear 543, the outer wall of the fifth gear 543 is meshed and connected with the first tooth 524, through the cooperation of the stirring shaft 541 and the stirring blade 542, the rubber material at the front end of the guide plate 521 can be stirred by self-rotation and revolution, when the guide plate 521 rotates, the fifth gear 543 can mesh and rotate with the first tooth 524, so that the first tooth 524 forces the fifth gear 543 to rotate, so that the fifth gear 543 drives the stirring shaft 54 1 and the stirring blade 542 perform double stirring on the rubber material. A winding assembly 55 is installed at the upper end of the interior of the rotating assembly 53. The winding assembly 55 can be used to circulate and transport the rubber material inside the guide assembly 52, and the rubber material can be extruded into sheets for discharge. The winding assembly 55 can be set to several groups. Different materials are filled inside the winding assemblies 55 of several groups, which can be intertwined with the sheet rubber material to intertwine and interweave the composite rubber tube, so that the composite material and the rubber material are intertwined, and the fit between the composite material and the rubber material is increased. The structure of other winding assemblies 55 is different from that of the winding assemblies 55 in the figure in that the opening of the receiving box 551 of the other winding assemblies 55 is in a closed state, and the rear end cover of the output box 555 is in an openable and closable state.By driving the other several groups of winding components 55 in reverse, the composite material is stored inside the winding components 55, a material receiving box 551 is installed on the rear side of the upper end of the convex ring 533, a side plate 552 is installed at the rear end of the material receiving box 551, the side plate 552 is installed on the upper end of the surface of the convex ring 533, a sixth motor 553 is installed at the left end of the rear end of the side plate 552, a storage box 554 is installed at the rear end of the side plate 552, an output box 555 is installed at the rear end of the storage box 554, an extrusion port 556 is provided at the right end of the output box 555, the inside of the output box 555 is rotatably connected to the output screw rod 557, a seventh motor 558 is installed at the left end of the outer wall of the output box 555, the output end of the seventh motor 558 is connected to the left port of the output screw rod 557, and the seventh motor 558 is connected to the left port of the output screw rod 557. The drive of the sixth motor 553 can drive the output screw rod 557 to rotate, and the output screw rod 557 can transport the rubber material inside the output box 555 to the extrusion port 556. The interior of the receiving box 551 is rotatably connected to the conical screw rod 559, and the rear end of the conical screw rod 559 is rotatably connected to the conveying screw rod 5510. The conveying screw rod 5510 is connected to the output end of the sixth motor 553 through a sprocket and a sprocket. The drive of the sixth motor 553 can drive the conveying screw rod 5510 and the conical screw rod 559 to rotate, so that the rotation of the conical screw rod 559 can transport the rubber material at the front end of the guide plate 521 to the interior of the receiving box 551. The rotation of the conveying screw rod 5510 can transport the rubber material inside the receiving box 551. The rubber material is transported to the storage box 554, and the rubber material inside the storage box 554 is transported to the inside of the output box 555. The rear end of the winding component 55 is installed with an external component 56. The driving end of the external component 56 contacts the rear end of the inner wall of the guide component 52. The driving of the external component 56 can drive the rotating component 53 to rotate, so that the rotating component 53 drives the winding component 55 to rotate along the limiting component 41. At the same time, the rotation of the rotating component 53 drives the stirring component 54 to rotate autonomously, so that the stirring component 54 stirs the rubber material. The external arc plate 561 is installed at the rear end of the convex ring 533. The upper end of the left side of the rear end of the external arc plate 561 is installed with an eighth motor 562. The output end of the eighth motor 562 is connected to the external gear 563. The outer wall of the wheel 563 is meshed with the second tooth 527, and the external gear 563 is rotated by the drive of the eighth motor 562, so that under the limit of the second tooth 527, the external gear 563 drives the rotating disk 531 and the external arc plate 561 to rotate. A pressing component 57 is installed on the left side of the rear end of the external component 56, and the pressing component 57 can receive the sheet rubber material discharged by the winding component 55 and press the sheet rubber material on the outer wall of the limiting shaft 412. When the pressing component 57 rotates with the winding component 55, the pressing component 57 presses and guides the wound sheet rubber material, so that the sheet rubber material is wound on the outer wall of the limiting shaft 412. The ninth motor 571 is installed on the left side of the rear end of the external arc plate 561.The output end of the ninth motor 571 is connected to the rotating rod 572, and arc-shaped telescopic rods 573 are installed at the front and rear ends of the rotating rod 572. The output end of the arc-shaped telescopic rod 573 is connected to the limited pressing roller 574. The driving of the ninth motor 571 can drive the rotating rod 572 and the arc-shaped telescopic rod 573 to rotate, so as to drive the arc-shaped telescopic rod 573 to adjust the angle. Through the telescopic driving of the arc-shaped telescopic rod 573 and the rotation of the ninth motor 571, the limited pressing roller 574 can be moved to the lower end of the extrusion port 556, so that the limited pressing roller 574 can receive the sheet rubber extruded from the extrusion port 556, and move the sheet rubber to the outer wall of the limiting shaft 412 for pressing and limiting, and the wound sheet rubber is rotationally limited. A shearing component 58 is provided on the right side of the rear end of the external component 56, and the wound rubber material can be sheared by the shearing component 58.
[0019] In specific use, technicians in this field put the rubber raw material into the extrusion mechanism 1, so that the rubber raw material is hot-melted inside the extrusion mechanism 1. By confirming the wall thickness of the rubber tube and the composite material of the rubber tube, a suitable trimming component 44 and a shaping component 32 are installed on the outer wall of the limiting shaft 412 and the inner wall of the vulcanization arc plate 313, and the hot-melted composite material is stored inside the remaining winding components 55. When preparing the rubber tube, the two groups of vulcanization mechanisms 31 are brought into contact with each other by starting the placement component 21, and the vulcanization mechanisms 31 are moved back and forth by the extrusion mechanism 1 to dock and seal the vulcanization mechanisms 31, and the hot-melted rubber raw material is output to the inside of the guide plate 521 through the extrusion mechanism 1, and the eighth motor 562 is started. , so that the several groups of stirring components 54 can continuously and multiple times stir the hot melt rubber inside the guide plate 521 by means of revolution and rotation, and the temperature of the hot melt rubber is controlled by the heating coil arranged on the inner wall of the guide plate 521. When winding preparation is performed, the winding component 55 and the pressing component 57 are started, and the sheet rubber extruded by the winding component 55 is received by the pressing component 57, and the sheet rubber filaments are pressed against the outer wall of the limiting shaft 412. At this time, the winding component 55 is rotated along the limiting shaft 412 by the eighth motor 562 and the extrusion mechanism 1, and the limiting shaft 412 is driven by the extrusion mechanism 1 to rotate autonomously. The speed ratio of the winding component 55 to the limiting shaft 412 is adjustable from 1:1 to 3:1, which solves the problem of the traditional device. In order to solve the problem of delayed response of winding tension, a plurality of winding components 55 are designed to interweave and wind a plurality of composite materials and rubber raw materials on the outer wall of the limiting shaft 412 until the winding of the rubber raw materials and the composite materials is completed, and the winding area of the limiting shaft 412 is smaller than the length of the second support rod 437. At the same time, the winding angle of the winding component 55 can be adjusted by cooperating with the driving of the movable component 51, so that the winding component 55 drives the sheet rubber thread to be obliquely wound on the outer wall of the limiting shaft 412. When the winding is completed, the shaping component 32 and the third motor 314 are started to make the shaping component 32 perform mobile cutting on the rubber tube, and the inner wall presses and shapes the outer wall of the rubber tube, and the vulcanized arc plate 313 is started. The heating device focuses the heat on the winding area of the rubber tube to slightly solidify the wound rubber tube. At this time, the moving component 42 is started to drive the trimming component 44 to move, so that the trimming component 44 moves through the slightly solidified rubber tube to cut the inner wall, and the wall thickness of the rubber tube is trimmed and regulated. At the same time, the supporting component 43 is started to support the trimmed rubber tube, and the rubber tube is continuously vulcanized by the vulcanizing arc plate 313. After the vulcanization operation is completed, the extrusion mechanism 1 and the vulcanization mechanism 31 are opened and closed, and the second support frame 222 at the rear end is opened at the rear end, and the formed rubber tube is transmitted through the transmission equipment at the rear end of the extrusion mechanism 1, thereby obtaining an integrally formed rubber pipe.
[0020] Although the present invention has been described above with reference to the embodiments, various modifications may be made thereto and parts thereof may be replaced by equivalents without departing from the scope of the present invention. In particular, as long as there is no structural conflict, the various features in the embodiments disclosed in the present invention may be used in combination with each other in any manner, and the fact that these combinations are not exhaustively described in this specification is only for the sake of omitting space and saving resources. Therefore, the present invention is not limited to the specific embodiments disclosed herein, but includes all technical solutions falling within the scope of the claims.
Claims
1. A rubber tube forming machine, comprising: The extrusion mechanism (1) is characterized by: A placement mechanism (2) is installed between the extrusion mechanisms (1). The top two ends of the placement mechanism (2) are connected to a vulcanization and shaping mechanism (3). The vulcanization and shaping mechanism (3) cooperates with the extrusion mechanism (1) to seal and heat-set the rubber tube. The vulcanization and shaping mechanism (3) is also used to press and shape the rubber tube after winding. The center of the placement mechanism (2) is rotatably connected to a limiting and trimming mechanism (4). The limiting and trimming mechanism (4) is used to limit the winding of the rubber. The limiting and trimming mechanism (4) is also used to trim the wall thickness of the rubber tube after winding. A rotating winding mechanism (5) is provided on the outer side of the limiting and trimming mechanism (4). The rotating winding mechanism (5) is connected to the middle position of the placement mechanism (2). The rotating winding mechanism (5) is used to receive the hot melt rubber output by the extrusion mechanism (1) and continuously heat the hot melt rubber. Through the extrusion and rotation of the rotating winding mechanism (5), the rubber material is wound around the outer wall of the limiting and trimming mechanism (4) in a thread state.
2. The rubber tube forming machine according to claim 1, characterized in that: The placement mechanism (2) comprises: a placement component (21); The placement component (21) is placed at the front and rear ends of the surface of the extrusion mechanism (1), a support component (22) is arranged in the middle of the placement component (21), and a driving component (23) is installed at the upper end and the lower end between the two groups of support components (22).
3. The rubber tube forming machine according to claim 2, characterized in that: The placement component (21) comprises: a placement plate (211); A placement plate (211) is placed at both ends of a surface of the extrusion mechanism (1); the surface of the placement plate (211) is rotatably connected to a first bidirectional screw (212); a first motor (213) is installed at the right end of an outer wall of the placement plate (211); an output end of the first motor (213) is connected to a right side port of the first bidirectional screw (212); The support assembly (22) comprises: a first support frame (221); The first support frame (221) is installed at the middle position of the placement plate (211), and the second support frame (222) is installed on the top of the first support frame (221); The driving assembly (23) comprises: a driving box (231); The drive box (231) is installed between the front and rear groups of first support frames (221); the surface of the first support frame (221) is rotatably connected to the first screw rod (232); a second motor (233) is installed at the front end of the drive box (231); and the output end of the second motor (233) is connected to the front side port of the first screw rod (232).
4. The rubber tube forming machine according to claim 3, characterized in that: The vulcanization and shaping mechanism (3) comprises: a vulcanization mechanism (31); The vulcanizing mechanism (31) is connected to the top two ends of the placement component (21), and a shaping component (32) is installed inside the vulcanizing mechanism (31).
5. The rubber tube forming machine according to claim 4, characterized in that: The vulcanization mechanism (31) comprises: a slide plate (311); The slide plate (311) is slidably connected to the two ends of the surface of the placement plate (211), the middle of the bottom of the slide plate (311) is threadedly connected to the outer wall of the first bidirectional screw (212), the top of the slide plate (311) is provided with a support rod (312), the top of the support rod (312) is installed with a vulcanizing arc plate (313), the rear end of the outer wall of the vulcanizing arc plate (313) is installed with a third motor (314), the middle part of the inner wall of the vulcanizing arc plate (313) is provided with two groups of slide grooves (315), a second screw (316) is provided between the two groups of slide grooves (315), and the second screw (316) is rotatably connected to the middle position of the vulcanizing arc plate (313); The shaping component (32) comprises: a movable plate (321); Slide blocks (322) are provided at both ends of the outer wall of the movable plate (321), and the slide blocks (322) are slidably connected to the inside of the slide groove (315). A first internal thread block (323) is provided in the middle of the outer wall of the movable plate (321), and the inside of the first internal thread block (323) is threadedly connected to the outer wall of the second screw rod (316). A telescopic box (324) is provided on the inner wall of the movable plate (321), and a main driving telescopic rod (325) is installed in the middle of the inside of the telescopic box (324), and auxiliary telescopic rods (326) are installed at both ends of the inside of the telescopic box (324). The output ends of the main driving telescopic rod (325) and the auxiliary telescopic rod (326) are both connected to the left end of the outer wall of the shaping arc plate (327), and shaping cutters (328) are provided at the front and rear ends of the shaping arc plate (327).
6. The rubber tube forming machine according to claim 5, characterized in that: The limiting and trimming mechanism (4) comprises: a limiting component (41); The limiting assembly (41) is rotatably connected to the center position between the two sets of second support frames (222); the moving assembly (42) is installed at the upper and lower ends of the limiting assembly (41); the supporting assembly (43) is installed in the middle of the limiting assembly (41); and the outer wall of the limiting assembly (41) is slidably connected to the finishing assembly (44).
7. The rubber tube forming machine according to claim 6, characterized in that: The limiting assembly (41) comprises: a limiting plate (411); The limiting disk (411) is rotatably connected to the center position of the second support frame (222), the limiting disk (411) is arranged in two groups, a limiting shaft rod (412) is arranged between the two groups of limiting disks (411), limiting grooves (413) are arranged around the outer surface of the limiting shaft rod (412), limiting rods (414) are installed inside the limiting grooves (413) at the left and right ends, and an arc groove (415) is arranged in the middle of the outer wall of the limiting shaft rod (412); The moving assembly (42) comprises: a third screw rod (421) and a fourth motor (423); The third screw rod (421) is provided in two groups, one group is rotatably connected inside the upper end limit groove (413), and the other group is rotatably connected inside the lower end limit groove (413); the rear side port of the third screw rod (421) is connected to the first gear (422); the fourth motor (423) is installed at the center position of the rear end limit plate (411); the output end of the fourth motor (423) is connected to the second gear (424); the second gear (424) is arranged in the middle of the rear end limit plate (411); the upper end and the lower end of the outer wall of the second gear (424) are meshedly connected with the third gear (425); the front end of the third gear (425) is connected to the fourth gear (426); the outer wall of the fourth gear (426) is meshedly connected with the outer wall of the first gear (422); The circle-supporting component (43) comprises: a hollow tube (431); The hollow tube (431) is fixedly installed at the middle position inside the limiting shaft (412), the inside of the hollow tube (431) is rotatably connected to the second bidirectional screw (432), the two ends of the second bidirectional screw (432) are rotatably connected to the two ends of the limiting shaft (412), the front end of the second bidirectional screw (432) is connected to the output end of the motor, and the motor is installed at the center of the front limiting plate (411), the outer side of the hollow tube (431) is provided with a supporting arc plate (433), and the supporting arc plate (433) is slidably connected to the inside of the arc groove (415), and the hollow tube (431) is provided with a supporting arc plate (433). Both ends of the outer wall of the core tube (431) are rotatably connected to one end of the first support rod (434), the other end of the first support rod (434) is rotatably connected to the inner wall of the supporting arc plate (433), the movable shaft block (435) is threadedly connected to both ends of the outer wall of the second bidirectional screw rod (432), the outer wall of the movable shaft block (435) is rotatably connected to the rotating ring (436), the outer wall of the rotating ring (436) is rotatably connected to one end of the second support rod (437), and the other end of the second support rod (437) is rotatably connected to the inner wall of the supporting arc plate (433); The trimming assembly (44) comprises: a trimming ring (441); A trimming ring (441) is arranged on the outer wall of the limiting shaft rod (412); a trimming cutter (442) is arranged at the front end of the outer wall of the trimming ring (441); second internal thread blocks (443) are arranged at the upper end and the lower end of the inner wall of the trimming ring (441); the second internal thread blocks (443) are slidably connected to the inside of the limiting grooves (413) at the upper end and the lower end; the inner wall of the second internal thread block (443) is threadedly connected to the outer wall of the third screw rod (421); a limiting block (444) is arranged at the left end and the right end of the inner wall of the trimming ring (441); the limiting block (444) is slidably connected to the inside of the limiting grooves (413) at the left end and the right end; the inside of the limiting block (444) is slidably connected to the outer wall of the limiting rod (414).
8. The rubber tube forming machine according to claim 7, characterized in that: The rotary winding mechanism (5) comprises: a movable component (51); The movable component (51) is slidably connected to the bottom of the upper drive box (231); a guide component (52) is installed at the bottom of the movable component (51); the bottom of the guide component (52) is slidably connected to the top of the lower drive box (231); the rear end of the guide component (52) is rotatably connected to the rotating component (53); a stirring component (54) is installed around the inside of the rotating component (53); a winding component (55) is installed at the upper end of the inside of the rotating component (53); an external component (56) is installed at the rear end of the winding component (55); a driving end of the external component (56) contacts the rear end of the inner wall of the guide component (52); a pressing component (57) is installed on the left side of the rear end of the external component (56); and a shearing component (58) is provided on the right side of the rear end of the external component (56).
9. The rubber tube forming machine according to claim 8, characterized in that: The movable component (51) comprises: a third internal thread block (511); The third internal thread block (511) is slidably connected to the interior of the upper drive box (231); the interior of the third internal thread block (511) is connected to the outer wall of the first screw rod (232); the bottom end of the third internal thread block (511) is rotatably connected to the rotating gear (512); the lower end of the rotating gear (512) is connected to the guide assembly (52); an extension block (513) is installed at the front end of the third internal thread block (511); the extension block (513) is slidably connected to the interior of the drive box (231); the extension block (513) ) is provided with a placement plate (514) at the bottom, a fifth motor (515) is installed at the bottom of the placement plate (514), an output end of the fifth motor (515) is connected to a driving gear (516), the driving gear (516) is rotatably connected to the bottom of the placement plate (514), a rear end of the bottom of the placement plate (514) is rotatably connected to a follower gear (517), a front end of the follower gear (517) is meshedly connected to the driving gear (516), and a rear end of the follower gear (517) is meshedly connected to the rotating gear (512); The guide assembly (52) comprises: a guide plate (521); The top of the guide plate (521) is connected to the rotating gear (512), the lower end of the guide plate (521) is provided with a sliding block (522), the sliding block (522) is connected to the driving end of the lower end driving assembly (23), the rear end surface of the guide plate (521) is provided with an inner groove (523), the rear end of the inner wall of the inner groove (523) is provided with a first tooth (524), the rear end inner wall of the inner groove (523) is provided with a rotating clamping groove (525) on the upper and lower sides, the front end of the first tooth (524) is provided with a baffle (526), and the rear end of the inner wall of the guide plate (521) is provided with a second tooth (527); The rotating assembly (53) comprises: a rotating disk (531); Rotating blocks (532) are provided on both sides of the rear end surface of the rotating disk (531), the rotating blocks (532) are rotatably connected to the inside of the rotating slot (525), a convex ring (533) is provided in the middle of the rear end surface of the rotating disk (531), the convex ring (533) penetrates the inner slot (523), and the rear end of the convex ring (533) is connected to the front end of the external component (56); The stirring assembly (54) comprises: a stirring shaft (541); The stirring shaft (541) is rotatably connected to the front end of the convex ring (533), the stirring shaft (541) is inserted into the inner groove (523), the front end of the outer wall of the stirring shaft (541) is provided with stirring blades (542), the rear end of the stirring blades (542) is provided with a fifth gear (543), and the outer wall of the fifth gear (543) is meshed with the first teeth (524).
10. The rubber tube forming machine according to claim 9, characterized in that: The winding assembly (55) comprises: a material receiving box (551); A material receiving box (551) is installed at the rear side of the upper end of the convex ring (533), a side plate (552) is installed at the rear end of the material receiving box (551), the side plate (552) is installed at the upper end of the surface of the convex ring (533), a sixth motor (553) is installed at the left end of the rear end of the side plate (552), a storage box (554) is installed at the rear end of the side plate (552), an output box (555) is installed at the rear end of the storage box (554), an extrusion port (556) is provided at the right end of the output box (555), and the output box (555) is provided with a plurality of electric motors. 5) is rotatably connected to the output screw rod (557), a seventh motor (558) is installed at the left end of the outer wall of the output box (555), the output end of the seventh motor (558) is connected to the left port of the output screw rod (557), the interior of the receiving box (551) is rotatably connected to the conical screw rod (559), the rear end of the conical screw rod (559) is rotatably connected to the conveying screw rod (5510), and the conveying screw rod (5510) is connected to the output end of the sixth motor (553) through a sprocket and a sprocket; The external component (56) comprises: an external arc plate (561); The external arc plate (561) is mounted on the rear end of the convex ring (533); an eighth motor (562) is mounted on the upper end of the left side of the rear end of the external arc plate (561); the output end of the eighth motor (562) is connected to the external gear (563); and the outer wall of the external gear (563) is meshedly connected to the second tooth (527); The pressing component (57) comprises: a ninth motor (571); The ninth motor (571) is mounted on the left side of the rear end of the external arc plate (561); the output end of the ninth motor (571) is connected to the rotating rod (572); the front and rear ends of the rotating rod (572) are mounted with arc-shaped telescopic rods (573); the output end of the arc-shaped telescopic rod (573) is connected to the limited pressing roller (574).
Citation Information
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