Transportation mechanism used between end sewing machine and sock turning machine
By designing the conveyor belt and rotor set between the sewing machine and the sock turner, the problem that the socks in the sewing machine cannot be automatically fed into the sock turner feeding port, automatic transportation is achieved, production efficiency is improved and sock damage is reduced.
Patent Information
- Application Number
- CN202422325404.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-23
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2034-09-23
AI Technical Summary
The socks at the discharge port of the sewing machine cannot be automatically fed into the feed port of the sock turner, resulting in low production efficiency and easy damage to the socks.
A transportation mechanism is designed for a sewing machine and a sock turning machine. The first and second conveyor belts are used to form a conveyor gap, the conveyor belt spacing is smaller than the thickness of the sock, with a rotating wheel set and roller to adjust the size of the inlet and outlet, and the conveyor is synchronously conveyed by rotating drives to form a V-shaped channel to adapt to socks of different models and thicknesses.
It realizes that the socks are automatically fed into the feeding port of the sock turning machine, reducing the production cost, reducing the risk of sock damage, and improving production efficiency and product quality.
Smart Images

Figure CN223134754U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to sock feeding technology, in particular to a transportation mechanism between a sock seaming machine and a sock turning machine. Background Art
[0002] The main function of a sock turning machine is to turn the sock inside out or outside in, so that the front side of the sock faces outward to meet different production requirements. For example, after the sock goes through processes such as seaming and dyeing, it needs to be turned over for subsequent finishing and packaging. However, after being sewn by the sock seaming machine, since the horizontal distance between the discharge port of the sock seaming machine and the feed port of the sock turning machine is too far, the sock cannot be directly transferred from the discharge port of the sock seaming machine to the feed port of the sock turning machine, and manual labor is required to send the sock into the feed port of the sock turning machine. Therefore, the production efficiency is reduced, and during the manual transportation process, the sock may rub against certain parts of the equipment, or be pulled due to improper operation during transportation, resulting in quality problems such as deformation and snagging of the sock, thereby reducing the qualified rate of the product.
[0003] Therefore, a transportation mechanism that can combine the discharge port of the sock seaming machine and the feed port of the sock turning machine is needed to solve the technical problem that the sock at the discharge port of the sock seaming machine cannot be automatically sent into the feed port of the sock turning machine, improve the production efficiency, and reduce the risk of sock damage. Summary of the Utility Model
[0004] In order to overcome the deficiency in the prior art that the sock at the discharge port of the sock seaming machine cannot be automatically sent into the feed port of the sock turning machine, the utility model provides a transportation mechanism between a sock seaming machine and a sock turning machine, which can solve the technical problem that the sock at the discharge port of the sock seaming machine cannot be automatically sent into the feed port of the sock turning machine.
[0005] To achieve the above purpose, the utility model adopts the following technical scheme: A transportation mechanism between a sock seaming machine and a sock turning machine, the sock seaming machine has a discharge port, the sock turning machine has a feed port, the transportation mechanism includes a first conveyor belt and a second conveyor belt, partial positions of the first conveyor belt and the second conveyor belt are close to each other to form a conveying gap, the conveying directions of the first conveyor belt and the second conveyor belt at the conveying gap are the same, the distance between the first conveyor belt and the second conveyor belt at the conveying gap is less than the thickness of the sock, a conveying inlet is arranged at the front end of the conveying gap, a conveying outlet is arranged at the rear end, the conveying inlet is connected to the discharge port of the sock seaming machine, and the conveying outlet is connected to the feed port of the sock turning machine.
[0006] After adopting the above technical solution, the utility model has the following advantages: Since the socks are light in weight, the socks can be transported by pressing them between the conveyor belts, with low power consumption, which helps to control costs. And it can be directly docked with the discharge port of the seaming machine, enabling the socks at the discharge port of the seaming machine to be automatically fed into the inlet of the sock turning machine. Since the material of the socks themselves is soft, the distance between the first conveyor belt and the second conveyor belt at the conveying gap is less than the thickness of the socks, and the conveying directions of the first conveyor belt and the second conveyor belt at the conveying gap are the same. Thus, the socks can be clamped and transported by the conveying gap. After the socks discharged from the seaming machine pass through the conveying gap between the first conveyor belt and the second conveyor belt, the socks can accurately enter the
[0007] inlet of the sock turning machine, solving the technical problem of transporting the socks from the discharge port of the seaming machine to the inlet of the sock turning machine.
[0008] Further, the first conveyor belt is tensioned by at least two rollers in the first roller group, at least including a first inlet roller and a first outlet roller. The second conveyor belt is tensioned by at least two rollers in the second roller group, at least including a second inlet roller and a second outlet roller. A conveying gap is formed between the first conveyor belt sleeved on the first inlet roller and the first outlet roller and the second conveyor belt sleeved on the second inlet roller and the second outlet roller. The conveying inlet is located between the first inlet roller and the second inlet roller, and the conveying outlet is located between the first outlet roller and the second outlet roller. At least one of the first inlet roller and the second inlet roller is radially movably connected to adjust the size of the conveying inlet, and / or at least one of the first outlet roller and the second outlet roller is radially movably connected to adjust the size of the conveying inlet.
[0009] Adopting the foregoing technical solution, the size of the conveying inlet can be adjusted by sliding or rotating the first inlet roller or the second inlet roller, and the size of the conveying outlet can be adjusted by sliding or rotating the first outlet roller or the second outlet roller, so as to adapt to different models of seaming machines or sock turning machines. By simultaneously sliding or rotating the first outlet roller and the first inlet roller or simultaneously adjusting the second outlet roller and the second inlet roller, the size of the conveying gap can be adjusted, so as to accommodate socks of different sizes.
[0010] Further, the first roller group includes a first fixed wheel frame and a first rotating wheel frame rotatably installed on the first fixed wheel frame. The first inlet roller is arranged on the first rotating wheel frame. The second roller group includes a second fixed wheel frame and a second rotating wheel frame rotatably installed on the second fixed wheel frame. The second outlet roller is arranged on the second rotating wheel frame.
[0011] Adopting the foregoing technical solution, by rotating the first rotating wheel frame, or / and, rotating the second rotating wheel frame, the size and angle of the conveying inlet can be adjusted.
[0012] Further, the first guiding wheel is arranged behind the second guiding wheel along the conveying direction, and a third guiding wheel is further included. The third guiding wheel is installed on the first rotating wheel frame. The third guiding wheel is closer to the sewing machine than the second guiding wheel. The first conveyor belt sleeved on the first guiding wheel and the third guiding wheel extends towards the sewing machine in a direction away from the second conveyor belt.
[0013] With the foregoing technical solution, through the conveyor belts between the first guiding wheel and the third guiding wheel and the conveyor belts between the second guiding wheel and the third guiding wheel, a V-shaped conveying inlet can be formed, and the opening of the V shape is adjustable, as well as the discharge port facing the sewing machine, which can adapt to more sewing machine models and socks of different thicknesses.
[0014] Further, the second rotating wheel group further includes a third rotating wheel frame rotatably installed on the second fixed wheel frame, and the second guiding wheel is arranged on the third rotating wheel frame.
[0015] With the foregoing technical solution, by rotating the third rotating wheel frame, the angle and size of the conveying inlet can be adjusted to adapt to more models of socks.
[0016] Further, a conveying roller is respectively arranged on the lower sides of the first conveyor belt and the second conveyor belt and close to each other, and a flattening gap is formed between the two conveying rollers.
[0017] With the foregoing technical solution, since the sock is only partially clamped and transported in the conveying gap, and the rest is not
[0018] clamped, the unclamped part of the sock is prone to distortion or twisting. When the unclamped part of the sock passes through the flattening gap, it has a preliminary flattening effect and can also prevent the sock from shaking.
[0019] Further, a first rotation driving member and a second rotation driving member are further included. The first conveyor belt is tensioned by the first rotating wheel group, and the second conveyor belt is tensioned by the second rotating wheel group. The first rotation driving member is coaxially connected to one of the rotating wheels in the first rotating wheel group and is coaxially connected to one of the conveying rollers. The second rotation driving member is coaxially connected to one of the rotating wheels in the second rotating wheel group and is coaxially connected to the other conveying roller.
[0020] With the foregoing technical solution, by running the conveying roller and the rotating wheel coaxially and sharing the same rotation driving member, the speeds of the conveying roller and the rotating wheel are synchronized, so that the sock remains synchronized when passing through the conveying gap and the flattening gap, avoiding the sock being pulled by forces of different speeds, preventing the sock from falling, and saving the power source and reducing the production cost.
[0021] Further, a first driving roller and a first driven roller are provided on the lower side of the first conveyor belt. The first driving roller and the first driven roller are arranged at intervals along the conveying direction. A first belt is sleeved outside the first driving roller and the first driven roller. A second driving roller and a second driven roller are provided on the lower side of the second conveyor belt. The second driving roller and the second driven roller are arranged at intervals along the conveying direction. A second belt is sleeved outside the second driving roller and the second driven roller. The distance between the first belt and the second belt gradually decreases along the conveying direction.
[0022] With the foregoing technical solution, by sleeving belts on the driving roller and the driven roller, the belts can be in direct contact with the socks, increasing the contact area with the socks. The distance between the two belts gradually decreases along the conveying direction, enabling the two belts to form a V-shaped channel, which can relieve the shaking of the socks to a greater extent. Therefore, after increasing the speed of the conveying mechanism, the V-shaped channel can still relieve the shaking of the socks, thereby accelerating the conveying speed of the socks.
[0023] Further, the first conveyor belt is tensioned by a first runner group, and the second conveyor belt is tensioned by a second runner group. The first runner group and the second runner group are provided with at least two pulleys, and pulley grooves are provided on the outer periphery of the pulleys.
[0024] With the foregoing technical solution, by providing pulleys on the first runner group and the second runner group and providing pulley grooves on the outer periphery of the pulleys, the first conveyor belt and the second conveyor belt run more smoothly and stably, avoiding the situation of the conveyor belt falling off.
[0025] Further, the first runner group includes four runners, namely a first guiding wheel, a third guiding wheel, a first discharging wheel, and a first driving wheel. The four runners form a quadrilateral. The second runner group includes three runners, namely a second guiding wheel, a second discharging wheel, and a second driving wheel. The three runners form a triangle. Description of the Drawings
[0026] The following further describes the present invention with reference to the drawings:
[0027] Figure 1 It is a top view of a conveying mechanism for use between a sock seaming machine and a sock turning machine according to the present invention;
[0028] Figure 2 It is a first schematic diagram of a conveying mechanism for use between a sock seaming machine and a sock turning machine;
[0029] Figure 3 It is a second schematic diagram of a conveying mechanism for use between a sock seaming machine and a sock turning machine;
[0030] Figure 4 It is an assembly diagram of the conveying mechanism when applied to a sock turning machine.
[0031] Description of the drawings: 1. First conveyor belt; 11. First rotation driving member; 2. Second conveyor belt; 21. Third rotation wheel frame; 22. Second rotation driving member; 3. First runner group; 31. First fixed wheel frame; 32. First rotation wheel frame; 4. Second runner group; 41. Second fixed wheel frame; 42. Second rotation wheel frame; 5. Introduction wheel group; 51. First introduction part; 52. Second introduction part; 6. Export wheel group; 7. Conveyor roller; 8. First driving roller; 81. First driven roller; 82. First belt; 9. Second driving roller; 91. Second driven roller; 92. Second belt; 10. Pulley groove. Detailed implementation manners
[0032] To make the objectives, technical solutions and advantages of the embodiments of the present utility model clearer, the technical solutions in the embodiments of the present utility model will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present utility model. Apparently, the described embodiments are only a part rather than all of the embodiments of the present utility model.
[0033] The terms "first", "second", etc. (if any) in the description and claims of the present utility model are used to distinguish similar objects, rather than to describe a specific order or sequence. Even if "second" is used to distinguish a certain technical feature, it does not necessarily imply the existence of "first". It should be understood that in the present utility model, "including" and "having" and any variations thereof are intended to cover non-exclusive inclusion. It should be understood that in the present utility model, "a plurality of" means two or more. "And / or" is merely a description of the association relationship of associated objects, indicating that three relationships may exist. For example, X and / or Y may represent: X exists alone, X and Y exist simultaneously, and Y exists alone. The character " / " generally represents an "or" relationship between the associated objects before and after. "Including X, Y and Z", "including X, Y, Z" means that all of X, Y, and Z are included, "including X, Y or Z" means that any one of X, Y, and Z is included, and "including X, Y and / or Z" means that any one or any two or all three of X, Y, and Z are included.
[0034] The technical solutions of the present utility model will be described in detail below with specific embodiments. These specific embodiments can be combined or replaced according to the actual situation. The same or similar concepts or processes may not be repeated in some embodiments.
[0035] As Figures 1 to 4 shown, the present utility model provides a transportation mechanism between a sock seaming machine and a sock turning machine. The sock seaming machine has a discharge port, and the sock turning machine has a feed port. The transportation mechanism includes a first conveyor belt 1 and a second conveyor belt
[0036] 2. A partial position of the first conveyor belt 1 and the second conveyor belt 2 is close to each other to form a conveying gap. At the conveying gap, the conveying directions of the first conveyor belt 1 and the second conveyor belt 2 are the same. The distance between the first conveyor belt 1 and the second conveyor belt 2 at the conveying gap is less than the thickness of the sock. A conveying inlet is provided at the front end of the conveying gap, and a conveying outlet is provided at the rear end. The conveying inlet is connected to the discharge port of the sock seaming machine, and the conveying outlet is connected to the feeding port of the sock turning machine.
[0037] After adopting the above technical solution, the utility model has the following advantages: Since the sock is light in weight, pressing the sock between the conveyor belts can achieve transmission, with low power consumption, which helps to control costs, and can be directly docked with the discharge port of the sock seaming machine, enabling the sock at the discharge port of the sock seaming machine to be automatically fed into the feeding port of the sock turning machine. Since the material of the sock itself is soft, the distance between the first conveyor belt 1 and the second conveyor belt 2 at the conveying gap is less than the thickness of the sock, and the conveying directions of the first conveyor belt 1 and the second conveyor belt 2 at the conveying gap are the same, so that the sock can be clamped and transported by the conveying gap. After the sock discharged from the sock seaming machine passes through the conveying gap between the first conveyor belt 1 and the second conveyor belt 2, the sock can accurately enter the feeding port of the sock turning machine, solving the technical problem of transporting the sock from the discharge port of the sock seaming machine to the feeding port of the sock turning machine.
[0038] Specifically, the first conveyor belt 1 is tensioned by at least two rollers in the first roller group 3, at least including a first guiding roller and a first discharging roller. The second conveyor belt 2 is tensioned by at least two rollers in the second roller group 4, at least including a second guiding roller and a second discharging roller. A conveying gap is formed between the first conveyor belt 1 sleeved on the first guiding roller and the first discharging roller and the second conveyor belt 2 sleeved on the second guiding roller and the second discharging roller. The conveying inlet is located between the first guiding roller and the second guiding roller, and the conveying outlet is located between the first discharging roller and the second discharging roller; at least one of the first guiding roller and the second guiding roller is radially movably connected to adjust the size of the conveying inlet, and / or at least one of the first discharging roller and the second discharging roller is radially movably connected to adjust the size of the conveying inlet.
[0039] By adopting the foregoing technical solution, the size of the conveying inlet can be adjusted by sliding or rotating the first guiding roller or the second guiding roller, and the size of the conveying outlet can be adjusted by sliding or rotating the first discharging roller or the second discharging roller, so as to adapt to different models of sock seaming machines or sock turning machines; by simultaneously sliding or rotating the first discharging roller and the first guiding roller or simultaneously adjusting the second discharging roller and the second guiding roller, the size of the conveying gap can be adjusted, so as to accommodate socks of different sizes.
[0040]
[0041] It can be understood that the second conveyor belt 2 is tensioned by the second runner group 4. The second runner group 4 includes a second fixed wheel frame 41 and a second rotating wheel frame 42 rotatably connected to the second fixed wheel frame 41. At least one runner in the second runner group 4 is respectively installed on the second rotating wheel frame 42 and the second fixed wheel frame 41; the runner on the second rotating wheel frame 42 is the runner closer to the conveying gap side; the first guiding wheel can be radially fixed, and only the second guiding wheel is radially movable to adjust the size and angle of the conveying inlet, or the second guiding wheel can be radially fixed, and only the first guiding wheel is radially movable to adjust the size and angle of the conveying inlet; the first discharging wheel can be radially fixed, and only the second discharging wheel is radially movable to adjust the size and angle of the conveying outlet, and the second discharging wheel can be radially fixed, and only the first discharging wheel is radially movable to adjust the size and angle of the conveying outlet.
[0042] In other embodiments, the above-mentioned movable connection can be radial sliding or radial rotation of the runner; and there are cases where only the conveying inlet or only the conveying outlet is adjusted.
[0043] Further, the first runner group 3 includes a first fixed wheel frame 31 and a first rotating wheel frame 32 rotatably installed on the first fixed wheel frame 31. The first guiding wheel is arranged on the first rotating wheel frame 32. The second runner group 4 includes a second fixed wheel frame 41 and a second rotating wheel frame 42 rotatably installed on the second fixed wheel frame 41. The second discharging wheel is arranged on the second rotating wheel frame 42.
[0044] Adopting the foregoing technical solution, by rotating the first rotating wheel frame 32, or / and, rotating the second rotating wheel frame 42, the size and angle of the conveying inlet can be adjusted.
[0045] Further, the first guiding wheel is arranged behind the second guiding wheel along the conveying direction, and further includes a third guiding wheel
[0046] The third guiding wheel is installed on the first rotating wheel frame 32. The third guiding wheel is closer to the sewing machine than the second guiding wheel. The first conveyor belt 1 sleeved on the first guiding wheel and the third guiding wheel extends away from the second conveyor belt 2 and towards the sewing machine.
[0047] Adopting the foregoing technical solution, through the conveyor belts between the first guiding wheel and the third guiding wheel and between the second guiding wheel and the third guiding wheel, a V-shaped conveying inlet can be formed, and the opening of the V shape is adjustable, and the discharging port towards the sewing machine can adapt to more sewing machine models and socks of different thicknesses.
[0048] Further, the second runner group 4 further includes a third runner frame 21 rotatably mounted on the second fixed runner frame 41, and the second inlet roller is provided on the third runner frame 21.
[0049] With the foregoing technical solution, by rotating the third runner frame 21, the angle and size of the conveying inlet can be adjusted to adapt to more models of socks.
[0050] Further, a conveying roller 7 is respectively provided on the lower sides of the first conveyor belt 1 and the second conveyor belt 2, and the two conveying rollers 7 form a flattening gap therebetween.
[0051] With the foregoing technical solution, since only a part of the sock is clamped and transported in the conveying gap, and the rest is not clamped, the unclamped part of the sock is prone to distortion or twisting. When the unclamped part of the sock passes through the flattening gap, it has a preliminary flattening effect and can also prevent the sock from shaking.
[0052] Further, it further includes a first rotation driving member 11 and a second rotation driving member 22. The first conveyor belt 1 is tensioned by the first runner group 3, and the second conveyor belt 2 is tensioned by the second runner group 4. The first rotation driving member 11 is coaxially connected to a runner in the first runner group 3 and is coaxially connected to one of the conveying rollers 7. The second rotation driving member 22 is coaxially connected to a runner in the second runner group 4 and is coaxially connected to the other conveying roller 7.
[0053] With the foregoing technical solution, by running the conveying roller 7 and the runner coaxially and sharing the same rotation driving member, the speeds of the conveying roller 7 and the runner are synchronized, so that the sock remains synchronized when passing through the conveying gap and the flattening gap, avoiding the sock being pulled by forces at different speeds, preventing the sock from falling, and saving the power source and reducing the production cost.
[0054] Further, a first driving roller 8 and a first driven roller 81 are provided on the lower side of the first conveyor belt 1. The first driving roller 8 and the first driven roller 81 are arranged at intervals along the conveying direction, and a first belt
[0055] 82 is sleeved outside the first driving roller 8 and the first driven roller 81. A second driving roller 9 and a second driven roller 91 are provided on the lower side of the second conveyor belt 2. The second driving roller 9 and the second driven roller
[0056] 91 are arranged at intervals along the conveying direction, and a second belt 92 is sleeved outside the second driving roller 9 and the second driven roller 91. The distance between the first belt 82 and the second belt 92 gradually decreases along the conveying direction.
[0057] Adopting the foregoing technical solution, by sleeving belts on the driving roller and the driven roller, the belts can be in direct contact with the socks, increasing the contact area with the socks. The distance between the two belts gradually decreases along the conveying direction, enabling the two belts to form a V-shaped channel, which can relieve the shaking of the socks to a greater extent. Therefore, after accelerating the speed of the conveying mechanism, the V-shaped channel can still relieve the shaking of the socks, thereby accelerating the conveying speed of the socks.
[0058] Further, the first conveyor belt 1 is tensioned by the first runner group 3, and the second conveyor belt 2 is tensioned by the second runner group 4. The first runner group 3 and the second runner group 4 are provided with at least two pulleys, and pulley grooves 10 are provided on the outer circumference of the pulleys.
[0059] Adopting the foregoing technical solution, by providing pulley grooves 10 on the runners of the first runner group 3 and the second runner group 4, the first conveyor belt 1 and the second conveyor belt 2 can run more smoothly and stably, avoiding the situation of the conveyor belt falling off.
[0060] Further, the first runner group includes four runners, namely a first inlet wheel, a third inlet wheel, a first outlet wheel and a first driving wheel. The four runners form a quadrilateral. The second runner group includes three runners, namely a second inlet wheel, a second outlet wheel and a second driving wheel. The three runners form a triangle.
[0061] Specifically, the third inlet wheel is runner A, the first inlet wheel is runner B, the first outlet wheel is runner C, the first driving wheel is runner D, the second inlet wheel is runner E, the second driving wheel is runner F, and the second outlet wheel is runner G.
[0062] In addition to the above preferred embodiments, the present utility model has other implementation manners. Based on the embodiments in the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the scope of protection claimed by the present utility model.
Claims
1. A transport mechanism between a sock seaming machine and a sock turning machine, the sock seaming machine having a discharge port, and the sock turning machine having a feed port, characterized in that, The conveying mechanism includes a first conveyor belt and a second conveyor belt. Part of the first conveyor belt and the second conveyor belt are close to each other to form a conveying gap. At the conveying gap, the conveying directions of the first conveyor belt and the second conveyor belt are the same. The distance between the first conveyor belt and the second conveyor belt at the conveying gap is less than the thickness of the sock. A conveying inlet is provided at the front end of the conveying gap, and a conveying outlet is provided at the rear end. The conveying inlet is connected to the discharge port of the sock seaming machine, and the conveying outlet is connected to the feeding port of the sock turning machine.
2. The transport mechanism between a seam welder and a sock turning machine according to claim 1, characterized in that The first conveyor belt is tensioned by at least two rollers in the first roller group, at least including a first guiding roller and a first discharging roller. The second conveyor belt is tensioned by at least two rollers in the second roller group, at least including a second guiding roller and a second discharging roller. A conveying gap is formed between the first conveyor belt sleeved on the first guiding roller and the first discharging roller and the second conveyor belt sleeved on the second guiding roller and the second discharging roller. The conveying inlet is located between the first guiding roller and the second guiding roller; the conveying outlet is located between the first discharging roller and the second discharging roller. At least one of the first guiding roller and the second guiding roller is radially movably connected to adjust the size of the conveying inlet, and / or at least one of the first discharging roller and the second discharging roller is radially movably connected to adjust the size of the conveying outlet.
3. The transport mechanism between a seam welder and a sock turning machine according to claim 2, characterized in that, The first roller group includes a first fixed roller frame and a first rotating roller frame rotatably installed on the first fixed roller frame. The first guiding roller is arranged on the first rotating roller frame. The second roller group includes a second fixed roller frame and a second rotating roller frame rotatably installed on the second fixed roller frame. The second discharging roller is arranged on the second rotating roller frame.
4. A transport mechanism between a seam sewing machine and a sock turning machine according to claim 2, characterized in that, The first guiding roller is arranged behind the second guiding roller along the conveying direction. A third guiding roller is further included. The third guiding roller is installed on the first rotating roller frame. The third guiding roller is closer to the sock seaming machine than the second guiding roller. The first conveyor belt sleeved on the third guiding roller and the first guiding roller extends away from the second conveyor belt and towards the sock seaming machine.
5. A transport mechanism between a seam welder and a sock turning machine according to claim 3, characterized in that The second roller group further includes a third rotating roller frame rotatably installed on the second fixed roller frame. The second guiding roller is arranged on the third rotating roller frame.
6. The transport mechanism between a seam welder and a sock turning machine according to claim 1, characterized in that, A conveying roller is provided respectively on the lower sides of the first conveyor belt and the second conveyor belt and close to each other. A flattening gap is formed between the two conveying rollers.
7. A transport mechanism between a seam welder and a sock turning machine according to claim 6, characterized in that, A first rotation driving member and a second rotation driving member are further included. The first conveyor belt is tensioned by the first roller group, and the second conveyor belt is tensioned by the second roller group. The first rotation driving member is coaxially connected to one roller in the first roller group and is coaxially connected to one of the conveying rollers. The second rotation driving member is coaxially connected to one roller in the second roller group and is coaxially connected to the other conveying roller.
8. A transport mechanism between a seam sewing machine and a sock turning machine according to claim 1, characterized in that, A first driving roller and a first driven roller are provided on the lower side of the first conveyor belt. The first driving roller and the first driven roller are arranged at intervals along the conveying direction. A first belt is sleeved on the first driving roller and the first driven roller. A second driving roller and a second driven roller are provided on the lower side of the second conveyor belt. The second driving roller and the second driven roller are arranged at intervals along the conveying direction. A second belt is sleeved on the second driving roller and the second driven roller. The distance between the first belt and the second belt gradually decreases along the conveying direction.
9. A transport mechanism between a seam welder and a sock turning machine according to claim 1, characterized in that, The first conveyor belt is tensioned by a first rotating wheel group, and the second conveyor belt is tensioned by a second rotating wheel group. The first rotating wheel group and the second rotating wheel group are provided with at least two pulley wheels, and pulley grooves are provided on the outer periphery of the pulley wheels.
10. The transport mechanism between a seam sewing machine and a sock turning machine according to claim 2, characterized in that, The first rotating wheel group includes four rotating wheels, namely a first guiding wheel, a third guiding wheel, a first guiding-out wheel and a first driving wheel. The four rotating wheels form a quadrilateral. The second rotating wheel group includes three rotating wheels, namely a second guiding wheel, a second guiding-out wheel and a second driving wheel. The three rotating wheels form a triangle.