Preparation device of invisible toe-separated socks with anti-skid function

The rapid toe-separation of the socks and the automatic glue application mechanism, achieved by using a motor-driven cutting blade and bevel gear transmission, solve the problem of low production efficiency in existing toe-separation socks and improve the production efficiency of toe-separation socks.

CN223481554UActive Publication Date: 2025-10-28JINHUA HAOSHA KNITTING CO LTD
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Patent Information

Application Number
CN202422641149.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-31
Publication Date
2025-10-28
Estimated Expiration
2034-10-31

AI Technical Summary

Technical Problem

Existing preparation devices have limited functionality in the process of preparing split toe stockings, making it difficult to quickly separate toes and apply adhesive evenly, resulting in low preparation efficiency.

Method used

The device for making invisible split-toe socks with anti-slip function uses a cutting blade driven by a motor to split the toes, and bevel gear transmission to realize the reciprocating motion of the sock tube positioning and the glue application mechanism. Combined with the air box suction and glue delivery, it realizes automatic glue application and rapid air drying.

Benefits of technology

It enables rapid toe segmentation and uniform adhesive application of socks, improving manufacturing efficiency. It has a simple structure and is easy to use.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of toe-separated sock preparation, particularly relates to a preparation device for invisible toe-separated socks with an anti-skid function, and aims to solve the problems that an existing preparation device is relatively single in function, cannot be used for quickly separating toes of sock legs conveniently, cannot be used for uniformly gluing the outer sides of the sock legs conveniently, and cannot be used for preparing the invisible toe-separated socks. According to the scheme, the invisible toe separation sock comprises a flax layer, an ice silk layer and anti-skid rubber and comprises a workbench, a vertical plate is fixedly installed at the top of the workbench, a supporting plate is fixedly installed at the top of the vertical plate, and a rubber box and an air box are fixedly installed at the top and the bottom of the supporting plate correspondingly; according to the sock leg toe separating and gluing device, in the using process, rapid toe separating and cutting can be conveniently carried out on a sock leg, uniform gluing can be conveniently carried out on the outer side of the sock leg, therefore, the preparation efficiency can be effectively improved, the structure is simple, and using is convenient.
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Description

Technical Field

[0001] This application relates to the field of toe-separation sock manufacturing technology, and in particular to a manufacturing device for invisible toe-separation socks with anti-slip function. Background Technology

[0002] Split-toe socks, also known as two-toed socks, are socks where the big toe is separated from the other four toes. Traditional split-toe socks are made of non-elastic fabric and have an opening at the back. They are fastened with straps, buttons, or buckles, which often come loose and cause the socks to slip down. In recent years, split-toe socks made of elastic fibers with elastic bands at the toe have appeared. These socks fit snugly against the foot and do not require straps or buckles, making them convenient to wear and less likely to slip down. Split-toe socks are mostly made by cutting and sewing after knitting.

[0003] Patent document CN113786026A discloses a sock cuff anti-slip processing equipment, comprising: a machine body, wherein the machine body is provided with an adjustment device for adjusting the height and position of the anti-slip box, a sock fixing device for fixing socks, an anti-slip device for adding anti-slip strips to the sock cuff, and a glue replenishing device for adding glue to the anti-slip box. The equipment uses a sliding block that slides on a circular slide rail to press the glued anti-slip strips onto the socks, preventing the socks from automatically slipping off the feet. This eliminates the need for manual application of the glue strips, significantly improving the equipment's efficiency.

[0004] However, the aforementioned patent documents have relatively limited functionality during use, making it inconvenient to quickly separate the toes of the socks and to evenly apply adhesive to the outer side of the socks, thus reducing manufacturing efficiency. Therefore, we propose a manufacturing device for invisible toe-separating socks with anti-slip function to solve the above problems. Utility Model Content

[0005] The purpose of this invention is to address the shortcomings of existing manufacturing devices, such as limited functionality, difficulty in quickly separating toes from the sock leg, and difficulty in evenly applying adhesive to the outer side of the sock leg, which reduces manufacturing efficiency. Therefore, this invention proposes a manufacturing device for invisible toe-separating socks with anti-slip function.

[0006] The device for manufacturing invisible split-toe socks with anti-slip function provided in this application adopts the following technical solution:

[0007] An apparatus for manufacturing invisible split-toe socks with anti-slip function, the invisible split-toe socks comprising: a linen layer, an ice silk layer, and an anti-slip gel, including:

[0008] The workbench has a vertical plate fixedly installed on its top, a support plate fixedly installed on the top of the vertical plate, a glue box and an air box fixedly installed on the top and bottom of the support plate, a fixed seat fixedly installed on the top of the workbench, a first through groove on the fixed seat, a positioning mechanism on the fixed seat, a movable plate slidably installed on the top of the workbench, a first rotating shaft rotatably installed on the vertical plate, a sleeve roller fixedly connected to one end of the first rotating shaft, a toe plate fixedly connected to one side of the sleeve roller, a cylinder fixedly installed on the top of the support plate, a U-shaped frame fixedly connected to the output shaft of the cylinder, a toe groove on the toe plate, a second through groove on the U-shaped frame, a cutting mechanism on the U-shaped frame, a glue application mechanism inside the glue box, two symmetrical fixed plates fixedly installed on the top of the glue box, a reciprocating mechanism on the two fixed plates, a power supply fixedly installed on one side of the vertical plate, a suction pipe and an exhaust pipe fixedly connected to both sides of the air box, and a debris collection mechanism inside the air box.

[0009] Furthermore, a rectangular hole is provided on one side of the vertical plate, and a first rectangular rod is slidably installed in the rectangular hole. One end of the first rectangular rod is fixedly connected to an annular plate, and a dispensing nozzle is fixedly installed on the annular plate. The same second screw is rotatably installed on the vertical plate and the fixed base. The second screw is threadedly connected to the movable plate. A first bevel gear is fixedly installed on the outer side of the first screw and one end of the second screw. The two first bevel gears mesh. When the first screw rotates, the two first bevel gears mesh and drive the second screw to rotate. The second screw can drive the movable plate to move horizontally.

[0010] Furthermore, a mesh plate is fixedly installed inside the bellows, a support rod is fixedly installed inside the bellows, a fourth rotating shaft is rotatably installed on the support rod, an impeller is fixedly installed on the outer side of the fourth rotating shaft, a third through hole is opened on the top inner wall of the bellows, a worm is rotatably installed in the third through hole, and a fourth bevel gear is fixedly installed on the other end of the fourth rotating shaft of the worm. The two fourth bevel gears mesh with each other. When the worm rotates, the worm drives the fourth bevel gear to rotate. The two fourth bevel gears mesh and transmit power. The other fourth bevel gear drives the fourth rotating shaft to rotate, and the fourth rotating shaft drives the impeller to rotate.

[0011] Furthermore, the reciprocating mechanism includes a rotating rod, which is rotatably mounted on two fixed plates. One end of the rotating rod is fixedly connected to a worm gear, and an eccentric wheel is fixedly mounted on the outer side of the rotating rod. Two sliding holes are opened on the top of the glue box, and a sliding rod is slidably installed in each of the two sliding holes. One end of the two sliding rods is fixedly connected to the same return frame, and the eccentric wheel cooperates with the return frame.

[0012] Furthermore, the glue application mechanism includes a glue cylinder, which is fixedly installed at the bottom of the glue box. An inlet pipe and a outlet pipe are fixedly connected to the outer side and bottom of the glue cylinder, respectively. A flexible tube is fixedly connected to one end of the outlet pipe, and one end of the flexible tube is fixedly connected to the glue nozzle. A piston is slidably installed inside the glue cylinder. Mounting holes are provided at the top of the glue cylinder and the top of the glue box. The same guide rod is slidably installed in the two mounting holes. The two ends of the guide rod are fixedly connected to the top of the piston and the bottom of the U-shaped frame, respectively. When the U-shaped frame moves vertically, the U-shaped frame drives the guide rod to move vertically, and the guide rod can drive the piston to move vertically.

[0013] Furthermore, a fixing rod is fixedly installed inside both the glue inlet tube and the glue outlet tube. A connecting rod is slidably installed on each of the two fixing rods. A first conical plug and a second conical plug are fixedly connected to one end of each of the two connecting rods. The first conical plug and the second conical plug cooperate with the glue inlet tube and the glue outlet tube, respectively. A second spring is sleeved on the outside of each of the two connecting rods. The two ends of the second spring are fixedly connected to the outside of the connecting rod and the outside of the fixing rod, respectively. When the first conical plug and the second conical plug are displaced, the first conical plug and the second conical plug drive the two connecting rods to move, and the two connecting rods stretch the two second springs to deform them.

[0014] Furthermore, a geared motor is fixedly installed on one side of the vertical plate, and the output shaft of the geared motor is fixedly connected to the other end of the first rotating shaft.

[0015] Furthermore, a rectangular groove is provided at the other end of the third rotating shaft, and a second rectangular rod is slidably installed in the rectangular groove. The second rectangular rod is rotatably installed on the support plate. A first sprocket is fixedly installed at one end of the second rectangular rod and on the outside of the worm. The same first chain meshes on the two first sprockets. The worm meshes with a worm wheel. When the second rectangular rod rotates, the two first sprockets are driven by the first chain. The other first sprocket can drive the worm to rotate, and the worm drives the worm wheel to rotate.

[0016] Furthermore, the cutting mechanism includes a second motor, which is fixedly mounted on one side of a U-shaped frame. A second rotating shaft is rotatably mounted on the U-shaped frame, with one end of the second rotating shaft fixedly connected to the output shaft of the second motor. A cutting blade is fixedly mounted on the outer side of the second rotating shaft. A second through hole is provided on the top inner wall of the second through slot, and a third rotating shaft is rotatably mounted in the second through hole. A second bevel gear and a third bevel gear are fixedly mounted on the outer side of the second rotating shaft and one end of the third rotating shaft, respectively. The second bevel gear and the third bevel gear mesh with each other. When the second motor is turned on, the second motor drives the second rotating shaft to rotate, the second rotating shaft drives the second bevel gear to rotate, the second bevel gear drives the third bevel gear to rotate, and the third bevel gear can drive the third rotating shaft to rotate.

[0017] Furthermore, the positioning mechanism includes a movable block, a first groove is provided on the top of the fixed base, the movable block is slidably installed in the first groove, a pressing plate is fixedly installed on the top of the movable block, an anti-slip pad is fixedly connected to the top of the pressing plate, a first motor is fixedly installed on the bottom of the worktable, a first through hole is provided on the bottom inner wall of the first groove, the first through hole communicates with the first through groove, a first screw is rotatably installed in the first through hole, the first screw is threadedly connected to the movable block, one end of the first screw is fixedly connected to the output shaft of the first motor, when the first motor is turned on, the first motor drives the first screw to rotate, the first screw drives the movable block, the pressing plate and the anti-slip pad to move vertically.

[0018] In summary, this application includes at least one of the following beneficial technical effects:

[0019] 1. In this solution, when the second motor is started, the second motor drives the second rotating shaft and the cutting blade to rotate. By activating the cylinder, the cylinder drives the U-shaped frame to move vertically, and the U-shaped frame drives the cutting blade to move vertically, so that the cutting blade can perform toe-separation processing on the sock.

[0020] 2. When the first motor is turned on, the first motor drives the first screw to rotate. The first screw drives the movable block and the extrusion plate to move vertically. In this way, the extrusion plate can position the sock on the toe plate. At the same time, the two first bevel gears mesh and drive the second screw to move the movable plate horizontally. The first rectangular rod can drive the annular plate to move horizontally to the designated glue application position.

[0021] 3. In this solution, when the worm rotates, the worm drives the worm wheel to rotate, the worm wheel drives the rotating rod to rotate, the rotating rod drives the eccentric wheel to rotate, the eccentric wheel drives the return frame to reciprocate vertically, and then the guide rod drives the piston to reciprocate vertically. Through the setting of the glue inlet pipe and glue outlet pipe, the glue can be delivered to the glue outlet nozzle for discharge, thereby achieving the purpose of automatic glue application and anti-slip.

[0022] This invention facilitates quick toe separation of socks during use and allows for uniform application of adhesive to the outer side of the sock, thereby effectively improving production efficiency. It has a simple structure and is easy to use. Attached Figure Description

[0023] Figure 1 This is a schematic diagram of the main structure of the preparation device in the preparation apparatus of the invisible split-toe socks with anti-slip function proposed in this utility model;

[0024] Figure 2 This is a schematic diagram of the positioning mechanism in the manufacturing device of an invisible split-toe sock with anti-slip function proposed in this utility model;

[0025] Figure 3 This is a schematic diagram of the annular plate in the manufacturing device of an invisible split-toe sock with anti-slip function proposed in this utility model;

[0026] Figure 4 This is a side view of the vertical plate in the manufacturing device for an invisible split-toe sock with anti-slip function proposed in this utility model.

[0027] Figure 5 This is a schematic diagram of the bellows structure in the manufacturing device for invisible split-toe socks with anti-slip function proposed in this utility model;

[0028] Figure 6 This is a schematic diagram of the glue box in the preparation device of invisible split-toe socks with anti-slip function proposed in this utility model;

[0029] Figure 7 This is a schematic diagram of the cutting mechanism in the manufacturing device for invisible split-toe socks with anti-slip function proposed in this utility model;

[0030] Figure 8 This is a schematic diagram of the adhesive coating mechanism in the preparation device of the invisible split-toe socks with anti-slip function proposed in this utility model;

[0031] Figure 9 This is a schematic diagram of the spiral frame in the manufacturing device for an invisible split-toe sock with anti-slip function proposed in this utility model;

[0032] Figure 10 This invention provides a device for preparing invisible split-toe socks with anti-slip function. Figure 1 Enlarged structural diagram of section A;

[0033] Figure 11 This invention provides a device for preparing invisible split-toe socks with anti-slip function. Figure 8 Enlarged structural diagram of section B;

[0034] Figure 12 This invention provides a device for preparing invisible split-toe socks with anti-slip function. Figure 8 Enlarged structural diagram of section C;

[0035] Figure 13 This is a product image of an invisible split-toe sock with anti-slip function, presented in the manufacturing apparatus of this utility model.

[0036] Reference numerals: 1. Workbench; 2. Vertical plate; 3. Support plate; 4. Bellows; 5. Mesh plate; 6. Suction pipe; 7. Exhaust pipe; 8. Support rod; 9. Glue box; 10. Fixed plate; 11. Movable plate; 12. Fixed seat; 13. First slide groove; 14. Movable block; 15. Extrusion plate; 16. Anti-slip pad; 17. First motor; 18. First screw; 19. First bevel gear; 20. First conical plug; 21. Second screw; 22. First through groove; 23. Sleeve roller; 24. Toe plate; 25. Toe groove; 26. First rectangular rod; 27. Annular plate; 32. First rotating shaft; 34. Cylinder; 35. U-shaped frame; 36. Second motor; 37. Second rotating shaft; 38. 39. Cutting disc; 40. Second bevel gear; 41. Third bevel gear; 42. Third rotating shaft; 43. Second rectangular rod; 44. Second through slot; 45. First sprocket; 46. First chain; 47. Glue outlet; 48. Fourth rotating shaft; 49. Impeller; 50. Fourth bevel gear; 51. Second conical plug; 52. Worm gear; 53. Piston; 54. Eccentric wheel; 55. Rotating rod; 56. Gearbox; 58. Hose; 59. Glue cartridge; 60. Glue inlet tube; 61. Glue outlet tube; 62. Guide rod; 63. Return frame; 64. Slide rod; 65. Fixing rod; 66. Connecting rod; 67. Second spring; 68. Linen layer; 69. Ice silk layer; 70. Anti-slip rubber. Detailed Implementation

[0037] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.

[0038] Example 1

[0039] Reference Figures 1-13 An apparatus for manufacturing invisible split-toe socks with anti-slip function, the invisible split-toe socks comprising: a linen layer 68, an ice silk layer 69, and an anti-slip gel 70, including:

[0040] Workbench 1, with a vertical plate 2 fixedly installed on top of the workbench 1, a support plate 3 fixedly installed on top of the vertical plate 2, a glue box 9 and a bellows 4 fixedly installed on the top and bottom of the support plate 3 respectively, a fixed seat 12 fixedly installed on top of the workbench 1, a first through groove 22 provided on the fixed seat 12, a positioning mechanism provided on the fixed seat 12, a movable plate 11 slidably installed on top of the workbench 1, a first rotating shaft 32 rotatably installed on the vertical plate 2, a sleeve roller 23 fixedly connected to one end of the first rotating shaft 32, a toe plate 24 fixedly connected to one side of the sleeve roller 23, a cylinder 34 fixedly installed on top of the support plate 3, a U-shaped frame 35 fixedly connected to the output shaft of the cylinder 34, a toe groove 25 provided on the toe plate 24, a second through groove 43 provided on the U-shaped frame 35, and a U-shaped... A cutting mechanism is installed on the frame 35, and a glue-applying mechanism is installed inside the glue box 9. Two symmetrical fixed plates 10 are fixedly installed on the top of the glue box 9, and a reciprocating mechanism is installed on the two fixed plates 10. A power supply 33 is fixedly installed on one side of the vertical plate 2. A suction pipe 6 and an exhaust pipe 7 are fixedly connected to both sides of the air box 4, respectively. The exhaust pipe 7 is Z-shaped. A debris collection mechanism is installed inside the air box 4. A rectangular hole is opened on one side of the vertical plate 2, and a first rectangular rod 26 is slidably installed in the rectangular hole. One end of the first rectangular rod 26 is fixedly connected to an annular plate 27. A glue nozzle 46 is fixedly installed on the annular plate 27. The same second screw 21 is rotatably installed on the vertical plate 2 and the fixed base 12. The second screw 21 is threadedly connected to the movable plate 11. The outer side of the first screw 18 is connected to the second screw. One end of the second screw 21 is fixedly equipped with a first bevel gear 19. The two first bevel gears 19 mesh. When the first screw 18 rotates, the two first bevel gears 19 mesh and drive the second screw 21 to rotate. The second screw 21 can drive the movable plate 11 to move horizontally. A mesh plate 5 is fixedly installed inside the bellows 4. A support rod 8 is fixedly installed inside the bellows 4. A fourth rotating shaft 47 is rotatably installed on the support rod 8. An impeller 48 is fixedly installed on the outer side of the fourth rotating shaft 47. A third through hole is opened on the inner wall of the top of the bellows 4. A worm gear 51 is rotatably installed in the third through hole. The other end of the fourth rotating shaft 47 of the worm gear 51 is fixedly equipped with a fourth bevel gear 49. The two fourth bevel gears 49 mesh. When the worm gear 51 rotates, the worm gear 51 drives the fourth bevel gear 49 to rotate. When wheel 49 rotates, two fourth bevel gears 49 mesh and drive each other. Another fourth bevel gear 49 drives the fourth rotating shaft 47 to rotate, which in turn drives the impeller 48 to rotate. A reduction motor 56 is fixedly installed on one side of the vertical plate 2. The output shaft of the reduction motor 56 is fixedly connected to the other end of the first rotating shaft 32. A rectangular groove is provided at the other end of the third rotating shaft 41. A second rectangular rod 42 is slidably installed in the rectangular groove. The second rectangular rod 42 is rotatably installed on the support plate 3. A first sprocket 44 is fixedly installed on one end of the second rectangular rod 42 and the outer side of the worm 51. The same first chain 45 meshes on the two first sprockets 44. The worm 51 meshes with a worm wheel 52. When the second rectangular rod 42 rotates, the two first sprockets 44 are driven by the first chain 45.Another first sprocket 44 can drive the worm gear 51 to rotate, and the worm gear 51 drives the worm wheel 52 to rotate. The cutting mechanism includes a second motor 36, which is fixedly installed on one side of the U-shaped frame 35. A second rotating shaft 37 is rotatably installed on the U-shaped frame 35. One end of the second rotating shaft 37 is fixedly connected to the output shaft of the second motor 36. A cutting disc 38 is fixedly installed on the outer side of the second rotating shaft 37. A second through hole is opened on the top inner wall of the second through slot 43. A third rotating shaft 41 is rotatably installed in the second through hole. A second bevel gear 39 and a third bevel gear 40 are fixedly installed on the outer side of the second rotating shaft 37 and one end of the third rotating shaft 41, respectively. The second bevel gear 39 and the third bevel gear 40 mesh with each other. When the second motor 36 is turned on, the second motor 36 drives the second rotating shaft 37 to rotate, the second rotating shaft 37 drives the second bevel gear 39 to rotate, and the second bevel gear 39 drives the third bevel gear 40 to rotate. The bevel gear 40 rotates, which in turn drives the third rotating shaft 41 to rotate. The positioning mechanism includes a movable block 14. A first groove 13 is provided on the top of the fixed base 12. The movable block 14 is slidably installed within the first groove 13. A pressing plate 15 is fixedly installed on the top of the movable block 14. An anti-slip pad 16 is fixedly connected to the top of the pressing plate 15. A first motor 17 is fixedly installed at the bottom of the worktable 1. A first through hole is provided on the inner wall of the bottom of the first groove 13, communicating with the first through slot 22. A first screw 18 is rotatably installed within the first through hole. The first screw 18 is threadedly connected to the movable block 14. One end of the first screw 18 is fixedly connected to the output shaft of the first motor 17. When the first motor 17 is turned on, it drives the first screw 18 to rotate, causing the movable block 14, the pressing plate 15, and the anti-slip pad 16 to move vertically.

[0041] Reference Figure 8 , Figure 11 and Figure 12The glue application mechanism includes a glue cylinder 59, which is fixedly installed at the bottom of the glue tank 9. An inlet pipe 60 and an outlet pipe 61 are fixedly connected to the outer side and bottom of the glue cylinder 59, respectively. One end of the outlet pipe 61 is fixedly connected to a flexible hose 58, and one end of the flexible hose 58 is fixedly connected to a glue nozzle 46. A piston 53 is slidably installed inside the glue cylinder 59. Mounting holes are provided at the top of both the glue cylinder 59 and the top of the glue tank 9. A guide rod 62 is slidably installed in both mounting holes. The two ends of the guide rod 62 are fixedly connected to the top of the piston 53 and the bottom of the conformal frame 63, respectively. When the conformal frame 63 moves vertically, it drives the guide rod 62 to move vertically, which in turn drives the piston 53 to move vertically. The inlet pipe 60 and the outlet pipe 61... 1. A fixing rod 65 is fixedly installed inside each of the two fixing rods 65. A connecting rod 66 is slidably installed on each of the two fixing rods 65. A first conical plug 20 and a second conical plug 50 are fixedly connected to one end of each of the two connecting rods 66. The first conical plug 20 and the second conical plug 50 are respectively engaged with the glue inlet tube 60 and the glue outlet tube 61. A second spring 67 is sleeved on the outside of each of the two connecting rods 66. The two ends of the second spring 67 are fixedly connected to the outside of the connecting rod 66 and the outside of the fixing rod 65, respectively. When the first conical plug 20 and the second conical plug 50 are displaced, the first conical plug 20 and the second conical plug 50 respectively drive the two connecting rods 66 to move, and the two connecting rods 66 respectively stretch the two second springs 67 to deform them.

[0042] Reference Figure 1 and Figure 10 The reciprocating mechanism includes a rotating rod 55, which is rotatably mounted on two fixed plates 10. One end of the rotating rod 55 is fixedly connected to a worm gear 52. An eccentric wheel 54 is fixedly mounted on the outer side of the rotating rod 55. Two sliding holes are opened on the top of the glue box 9. A sliding rod 64 is slidably installed in each of the two sliding holes. One end of the two sliding rods 64 is fixedly connected to the same return frame 63. The eccentric wheel 54 cooperates with the return frame 63.

[0043] The implementation principle of the device for preparing invisible split-toe socks with anti-slip function according to this application embodiment is as follows: In use, firstly, flax and ice silk yarns are dyed, and the dyed yarns are softened. The treated flax and ice silk yarns are then knitted into sock tubes using a knitting machine. Two sock tubes, one flax and one ice silk, are sequentially fitted onto the outside of the roller 23. The splicing of the two sock tubes ensures the breathability and sweat absorption of the split-toe socks. Then, the first motor 17 is turned on, driving the first screw 18 to rotate. The first screw 18 drives the movable block 14 and the extrusion plate 15 to move vertically upwards. The extrusion plate 15 and the anti-slip pad 16 then fix and position the portion of the sock tube located on the split-toe plate 24. Simultaneously, the first screw... Rod 18 drives the first bevel gear 19 to rotate, and two first bevel gears 19 mesh to drive each other. Another first bevel gear 19 drives the second screw 21 to rotate, and the second screw 21 drives the movable plate 11 to move horizontally to the right. The movable plate 11 drives the first rectangular rod 26 and the annular plate 27 to the glue application position. Then, the second motor 36 is turned on, which drives the second rotating shaft 37 to rotate. The second rotating shaft 37 drives the cutting blade 38 to rotate. Then, the cylinder 34 is turned on, which drives the U-shaped frame 35 to move vertically downward. Then, the cutting blade 38 engages with the toe-separating groove 25 on the toe-separating plate 24, which can cut and process the part of the sock that needs to be separated. At the same time, the second rotating shaft 37 drives the second bevel gear 39 to rotate, and the second bevel gear 39 drives the third bevel gear 40. The rotation of the third bevel gear 40 drives the third shaft 41 to rotate. Through the arrangement of the rectangular groove on the third shaft 41 engaging with the second rectangular rod 42, the rotation of the third shaft 41 drives the second rectangular rod 42 to rotate. The second rectangular rod 42 drives the first sprocket 44 to rotate. The two first sprockets 44 are driven by the first chain 45. The other first sprocket 44 drives the worm gear 51 to rotate. The worm gear 51 drives the fourth bevel gear 49 to rotate. The two fourth bevel gears 49 mesh and drive each other. The other fourth bevel gear 49 drives the fourth shaft 47 to rotate. The fourth shaft 47 drives the impeller 48 to rotate. The suction force generated by the rotation of the impeller 48 draws the debris generated during the splitting process into the bellows 4 through the suction pipe 6. The mesh plate 5 intercepts and collects the debris. Meanwhile, the worm gear... Rod 51 drives worm gear 52 to rotate, worm gear 52 drives rotating rod 55 to rotate, rotating rod 55 drives eccentric wheel 54 to rotate, eccentric wheel 54 cooperates with return frame 63 to drive return frame 63 to reciprocate vertically, return frame 63 drives guide rod 62 and piston 53 to reciprocate vertically. When piston 53 moves vertically upward, second conical plug 50 is reset by the deformation force of second spring 67, second conical plug 50 can close glue outlet tube 61, at this time the negative pressure generated in glue cylinder 59 drives first conical plug 20 to move horizontally to the right, and then first conical plug 20 can open glue inlet tube 60, and then the glue in glue tank 9 can be drawn into glue cylinder 59. When piston 53 moves vertically downward, similarly, first conical plug 20 closes glue inlet tube 60.The second conical plug 50 automatically opens under the pressure of the adhesive, allowing the adhesive to be delivered to the dispensing nozzle 46 via the dispensing pipe 61 and hose 58. The dispensing nozzle 46 discharges the adhesive onto the surface of the sock tube. Simultaneously, the first motor 17 reverses, releasing the sock tube from its positioning. The cylinder 34 then activates, causing the U-shaped frame 35 to move vertically upwards. The reduction motor 56 then activates, driving the first rotating shaft 32 to rotate. The first rotating shaft 32 then rotates the sleeve roller 23, which in turn rotates the sock tube. This ensures even coating of the adhesive, guaranteeing the anti-slip effect of the split-toe socks. Simultaneously, the air pressure discharged from the bellows 4 through the exhaust pipe 7 quickly dries the coated adhesive, effectively improving the production efficiency of the split-toe socks. Finally, the second motor 36 is turned off, and the sock tube is removed from the sleeve roller 23. The split-toe section of the sock tube is then sewn together using an overlock machine. The sewn invisible socks are then shaped and inspected. Once inspected and approved, they are packaged and stored, completing the production of the split-toe socks.

[0044] Example 2

[0045] The difference between this embodiment and Embodiment 1 is that: two heating plates are installed inside the glue tank 9, a third motor is fixedly installed on one side of the glue tank 9, the output shaft of the third motor is fixedly connected to a stirring shaft, and multiple stirring blades are fixedly connected to the outside of the stirring shaft. When the two heating plates and the third motor are turned on, the third motor drives the stirring shaft and multiple stirring blades to rotate, and the multiple stirring blades stir the glue liquid to make it heat evenly and ensure the fluidity of the glue liquid.

[0046] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.

Claims

1. A device for preparing invisible split-toe socks with anti-slip function, wherein the invisible split-toe socks include: The flax layer (68), the ice silk layer (69), and the anti-slip adhesive (70) are characterized by comprising: A workbench (1) is provided. A vertical plate (2) is fixedly installed on the top of the workbench (1). A support plate (3) is fixedly installed on the top of the vertical plate (2). A glue box (9) and a bellows (4) are fixedly installed on the top and bottom of the support plate (3), respectively. A fixed seat (12) is fixedly installed on the top of the workbench (1). A first through groove (22) is provided on the fixed seat (12). A positioning mechanism is provided on the fixed seat (12). A movable plate (11) is slidably installed on the top of the workbench (1). A first rotating shaft (32) is rotatably installed on the vertical plate (2). A sleeve roller (23) is fixedly connected to one end of the first rotating shaft (32). A sleeve roller (23) is fixedly connected to one side of the sleeve roller (23). A toe plate (24) is connected to the top of the support plate (3), a cylinder (34) is fixedly installed on the top of the support plate (3), the output shaft of the cylinder (34) is fixedly connected to a U-shaped frame (35), a toe groove (25) is opened on the toe plate (24), a second through groove (43) is opened on the U-shaped frame (35), a cutting mechanism is provided on the U-shaped frame (35), a glue applicator is provided inside the glue box (9), two symmetrical fixed plates (10) are fixedly installed on the top of the glue box (9), a reciprocating mechanism is provided on the two fixed plates (10), a suction pipe (6) and an exhaust pipe (7) are fixedly connected to both sides of the bellows (4), and a debris collection mechanism is provided inside the bellows (4).

2. The apparatus for preparing invisible split-toe socks with anti-slip function according to claim 1, characterized in that: The positioning mechanism includes a movable block (14), a first groove (13) is provided on the top of the fixed seat (12), the movable block (14) is slidably installed in the first groove (13), a pressing plate (15) is fixedly installed on the top of the movable block (14), an anti-slip pad (16) is fixedly connected to the top of the pressing plate (15), a first motor (17) is fixedly installed at the bottom of the worktable (1), a first through hole is provided on the bottom inner wall of the first groove (13), the first through hole communicates with the first through groove (22), a first screw (18) is rotatably installed in the first through hole, the first screw (18) is threadedly connected to the movable block (14), and one end of the first screw (18) is fixedly connected to the output shaft of the first motor (17).

3. The apparatus for preparing invisible split-toe socks with anti-slip function according to claim 2, characterized in that: A rectangular hole is provided on one side of the vertical plate (2), and a first rectangular rod (26) is slidably installed in the rectangular hole. One end of the first rectangular rod (26) is fixedly connected to an annular plate (27), and a glue nozzle (46) is fixedly installed on the annular plate (27). The same second screw (21) is rotatably installed on the vertical plate (2) and the fixed seat (12). The second screw (21) is threadedly connected to the movable plate (11). A first bevel gear (19) is fixedly installed on the outer side of the first screw (18) and one end of the second screw (21), and the two first bevel gears (19) mesh.

4. The apparatus for preparing invisible split-toe socks with anti-slip function according to claim 3, characterized in that: The cutting mechanism includes a second motor (36), which is fixedly installed on one side of a U-shaped frame (35). A second rotating shaft (37) is rotatably installed on the U-shaped frame (35). One end of the second rotating shaft (37) is fixedly connected to the output shaft of the second motor (36). A cutting blade (38) is fixedly installed on the outer side of the second rotating shaft (37). A second through hole is opened on the top inner wall of the second through groove (43). A third rotating shaft (41) is rotatably installed in the second through hole. A second bevel gear (39) and a third bevel gear (40) are fixedly installed on the outer side of the second rotating shaft (37) and one end of the third rotating shaft (41), respectively. The second bevel gear (39) and the third bevel gear (40) mesh with each other.

5. The apparatus for preparing invisible split-toe socks with anti-slip function according to claim 4, characterized in that: A mesh plate (5) is fixedly installed inside the bellows (4), a support rod (8) is fixedly installed inside the bellows (4), a fourth rotating shaft (47) is rotatably installed on the support rod (8), an impeller (48) is fixedly installed on the outer side of the fourth rotating shaft (47), a third through hole is opened on the top inner wall of the bellows (4), a worm gear (51) is rotatably installed in the third through hole, and a fourth bevel gear (49) is fixedly installed on the other end of the fourth rotating shaft (47) of the worm gear (51), and the two fourth bevel gears (49) mesh with each other.

6. The apparatus for preparing invisible split-toe socks with anti-slip function according to claim 5, characterized in that: The other end of the third rotating shaft (41) is provided with a rectangular groove, and a second rectangular rod (42) is slidably installed in the rectangular groove. The second rectangular rod (42) is rotatably installed on the support plate (3). One end of the second rectangular rod (42) and the outer side of the worm (51) are both fixedly installed with a first sprocket (44). The two first sprockets (44) are meshed with the same first chain (45), and the worm (51) is meshed with a worm wheel (52).

7. The apparatus for preparing invisible split-toe socks with anti-slip function according to claim 6, characterized in that: The reciprocating mechanism includes a rotating rod (55), which is rotatably mounted on two fixed plates (10). One end of the rotating rod (55) is fixedly connected to a worm gear (52). An eccentric wheel (54) is fixedly mounted on the outer side of the rotating rod (55). Two sliding holes are opened on the top of the glue box (9). A sliding rod (64) is slidably installed in each of the two sliding holes. One end of the two sliding rods (64) is fixedly connected to the same return frame (63). The eccentric wheel (54) cooperates with the return frame (63).

8. The apparatus for preparing invisible split-toe socks with anti-slip function according to claim 7, characterized in that: A geared motor (56) is fixedly installed on one side of the vertical plate (2), and the output shaft of the geared motor (56) is fixedly connected to the other end of the first rotating shaft (32).

9. The apparatus for preparing invisible split-toe socks with anti-slip function according to claim 8, characterized in that: The glue applicator includes a glue cylinder (59), which is fixedly installed at the bottom of the glue box (9). The glue cylinder (59) is connected to the outside and bottom of the glue cylinder (59) by a glue inlet pipe (60) and a glue outlet pipe (61), respectively. One end of the glue outlet pipe (61) is connected to a flexible hose (58), and one end of the flexible hose (58) is connected to a glue outlet nozzle (46). A piston (53) is slidably installed inside the glue cylinder (59). The top of the glue cylinder (59) and the top of the glue box (9) are both provided with mounting holes. The same guide rod (62) is slidably installed in the two mounting holes. The two ends of the guide rod (62) are fixedly connected to the top of the piston (53) and the bottom of the U-shaped frame (63), respectively.

10. The apparatus for preparing invisible split-toe socks with anti-slip function according to claim 9, characterized in that: A fixing rod (65) is fixedly installed inside both the glue inlet tube (60) and the glue outlet tube (61). A connecting rod (66) is slidably installed on both fixing rods (65). A first conical plug (20) and a second conical plug (50) are fixedly connected to one end of each connecting rod (66). The first conical plug (20) and the second conical plug (50) cooperate with the glue inlet tube (60) and the glue outlet tube (61) respectively. A second spring (67) is sleeved on the outside of each connecting rod (66). The two ends of the second spring (67) are fixedly connected to the outside of the connecting rod (66) and the outside of the fixing rod (65) respectively.

Citation Information

Patent Citations

  • Sock welt anti-skid processing equipment

    CN113786026A