Anti-hooking mechanism for sock turning machine

The sock turning machine's preventive entanglement mechanism addresses sock entanglement issues by using rotating drive components and synchronized transmission to ensure smooth sock transfer, enhancing operational efficiency and reducing equipment damage.

CN223103335UActive Publication Date: 2025-07-15ZHUJI JINQI INTELLIGENT TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422327692.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-23
Publication Date
2025-07-15
Estimated Expiration
2034-09-23

AI Technical Summary

Technical Problem

In existing sock flip machines, socks are easily hooked to the equipment after they are removed from the conveying device, which affects the operation of the equipment and causes flying socks.

Method used

An anti-hooking mechanism is provided on the open side of the sock feeding slide rail, and the eccentric holes of the rotating drive member and the rotating conveyor are connected coaxially. The sock hook is avoided through eccentric rotation, and a synchronous transmission mechanism is used to ensure synchronous movement of the output shaft, increasing the belt contact area to stabilize the sock falling into the slide rail.

Benefits of technology

It effectively avoids the hooking of socks on the equipment, reduces the delivery speed requirements, reduces the situation of flying socks, and ensures that the socks enter the sock delivery slide.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an anti-hooking mechanism for a sock turning machine, relates to the technical field of sock feeding, overcomes the defect that socks can be hooked to some parts of equipment when being separated from a conveying device in the prior art, and mainly adopts the technical scheme that the anti-hooking mechanism for the sock turning machine is used for solving the problem. The sock turning machine comprises a conveying device and a sock feeding sliding rail, the top end of the sock feeding sliding rail is connected with the conveying device, one side of the sock feeding sliding rail is open, and the hooking prevention mechanism is arranged on the open side of the top of the sock feeding sliding rail and used for shaking off socks in the conveying device to the sock feeding sliding rail. The anti-hooking mechanism comprises a rotary driving part and at least one rotary conveying part which is transversely arranged, the rotary conveying part is provided with an eccentric hole, and an output shaft of the rotary driving part is coaxially connected with the eccentric hole in the rotary conveying part. The sock feeding device is mainly used for solving the problem that socks are easily hooked on equipment in the process of falling onto the sock feeding sliding rail.
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Description

Technical Field

[0001] The utility model relates to sock feeding technology, in particular to an anti-hooking mechanism for 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 seam sewing and dyeing, it needs to be turned over for subsequent finishing and packaging. In the prior art, the sock is conveyed to the sock feeding slide rail of the sock turning machine through a conveying device. Since some socks are relatively fluffy, when the sock detaches from the conveying device and falls onto the sock feeding slide rail, it may be hooked on some parts of the device, making the sock unable to enter the sock turning machine to complete the sock turning work, and it will also affect the subsequent socks entering the sock turning machine, causing damage to the device. Content of the Utility Model

[0003] In order to overcome the deficiency in the prior art that the sock will be hooked on some parts of the device when detaching from the conveying device, the utility model provides an anti-hooking mechanism for a sock turning machine, which can solve the problem that the sock is easily hooked on the device during the process of falling onto the sock feeding slide rail.

[0004] To achieve the above purpose, the utility model adopts the following technical scheme: an anti-hooking mechanism for a sock turning machine, the sock turning machine includes a conveying device and a sock feeding slide rail with the top end connected to the conveying device, the anti-hooking mechanism is arranged on the open side at the top of the sock feeding slide rail and is used to shake the sock sent out by the conveying device onto the sock feeding slide rail, the anti-hooking mechanism includes a rotation driving part and at least one horizontally arranged rotation conveying part, the rotation conveying part is provided with an eccentric hole, and the output shaft of the rotation driving part is coaxially connected with the eccentric hole on the rotation conveying part.

[0005] After adopting the above technical scheme, the utility model has the following advantages: In the prior art, since the sock feeding slide rail in the prior art is open, and the sock will be fluffy after detaching from the conveying device, so the sock in the conveying device may be hooked on the conveying device when detaching from the conveying device, or may be hooked on the device during the process of falling onto the sock feeding slide rail. Therefore, it is necessary to increase the conveying speed of the conveying device so that the sock can smoothly detach from the conveying device. However, when the conveying speed of the conveying device is increased, the situation of flying socks will occur. By arranging the anti-hooking mechanism on the open side of the sock feeding slide rail, this problem can be solved. Since the output shaft of the rotation driving part is coaxially connected with the eccentric hole on the rotation conveying part, when the output shaft rotates, it drives the rotation conveying part to rotate eccentrically. After the rotation conveying part impacts the sock, it can prevent the sock from being hooked on the device in between and help the sock smoothly fall onto the sock feeding slide rail.

[0006] Further, the number of the rotary conveyors is two. The two rotary conveyors are vertically spaced apart and a belt is sleeved outside them. The rotary driving member has two output shafts, and the two output shafts are coaxially connected to the eccentric holes on the corresponding rotary conveyors respectively.

[0007] With the foregoing technical solution, since the two rotary conveyors are vertically spaced apart, by sleeving the belt on the two rotary conveyors, the setting of the belt increases the vertical moving area of the mechanism and increases the area that can collide with the socks.

[0008] Further, the two output shafts are connected by a synchronous transmission mechanism.

[0009] With the foregoing technical solution, by connecting the two output shafts with a synchronous transmission mechanism, the two output shafts can be started and stopped synchronously, which is convenient for controlling the synchronization degree. Compared with using two independently moving output shafts, it is easier to control, and it also helps to ensure the synchronization of the two output shafts during eccentric motion, so that a larger contact area of the belt can collide with the falling socks.

[0010] Further, the synchronous transmission mechanism includes two belt pulleys and a synchronous belt. The diameters of the two belt pulleys are the same and they are respectively connected to the two output shafts, and the synchronous belt is sleeved on the two belt pulleys.

[0011] With the foregoing technical solution, by connecting belt pulleys with the same diameter to the two output shafts and transmitting power through the synchronous belt, the rotation of the two output shafts can be synchronized, and the installation is convenient.

[0012] Further, the synchronous transmission mechanism includes transmission gears connected to the two output shafts. The synchronous transmission mechanism includes two transmission gears and an intermediate gear. The two transmission gears are respectively connected to the two output shafts, and the number of teeth of the two transmission gears is the same and they are adapted, and the intermediate gear meshes with the two transmission gears.

[0013] With the foregoing technical solution, by connecting two transmission gears with the same number of teeth and adapted to the two output shafts and using an intermediate gear for transmission in the middle, the transmission of the two output shafts is more accurate and more timely.

[0014] Further, the synchronous transmission mechanism includes two sprockets and a chain. The two sprockets are respectively connected to the two output shafts, and the number of teeth of the two sprockets is the same and they are adapted, and the chain is sleeved on the two sprockets.

[0015] With the foregoing technical solution, by installing two sprockets with the same number of teeth and adapted to the two output shafts and using a chain for transmission, the two output shafts rotate synchronously. The installation of the sprockets is more convenient and the transmission is accurate.

[0016] Further, a wheel groove for installing a belt is provided on the rotating conveyor.

[0017] With the foregoing technical solution, by providing a wheel groove on the rotating conveyor, the belt installed on the wheel groove is not easily displaced, enabling the belt to contact the dropped socks over a larger area and helping the socks enter the sock feeding slide rail more smoothly.

[0018] Further, the rotating conveyor is cylindrical in shape.

[0019] With the foregoing technical solution, when the rotating conveyor is cylindrical, the installation of the rotating conveyor is more convenient.

[0020] Further, a sensor for sensing socks is provided at the discharge port of the conveying device, and the sensor is electrically connected to a control unit for controlling the rotation drive.

[0021] With the foregoing technical solution, by providing a sensor at the discharge port, when a sock passes by the sensor, after the sensor senses the sock, it transmits the sensing signal to the control unit, starting the rotation drive to drive the rotating conveyor to rotate, enabling the rotating conveyor to more precisely contact the sock in the air and helping the sock to more precisely fall into the sock feeding slide rail.

[0022] Further, it further includes a bracket, the rotation drive is installed on the bracket, and the output shaft is rotatably connected to the bracket. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] The following further describes the present invention with reference to the drawings:

[0024] Figure 1 It is the first schematic diagram of an anti - snagging mechanism for a sock turning machine according to the present invention;

[0025] Figure 2 It is the second schematic diagram of an anti - snagging mechanism for a sock turning machine;

[0026] Figure 3 It is the assembly diagram of an anti - snagging mechanism for a sock turning machine;

[0027] Figure 4 It is the schematic diagram of an anti - snagging mechanism for a sock turning machine applied to a sock turning machine.

[0028] BRIEF DESCRIPTION OF THE DRAWINGS: 1. Conveying device; 2. Sock feeding slide rail; 3. Rotation drive; 31. Output shaft; 4. Rotating conveyor; 41. Eccentric hole; 42. Wheel groove; 5. Belt; 6. Pulley; 7. Timing belt; 8. Bracket. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0029] 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. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all of the embodiments.

[0030] Terms such as "first" and "second" (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 of their variations 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 can exist. For example, X and / or Y can represent three situations: 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" and "including X, Y, Z" mean that all of X, Y, and Z are included. "Including X, Y, or Z" means including any one of X, Y, and Z. "Including X, Y, and / or Z" means including any one or any two or all three of X, Y, and Z.

[0031] 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. For the same or similar concepts or processes, they may not be repeated in some embodiments.

[0032] Embodiment 1:

[0033] As Figures 1 to 4 shown, the present utility model provides an anti-hooking mechanism for a sock turning machine. The sock turning machine includes a conveying device 1 and a sock feeding slide rail 2 with its top connected to the conveying device 1. The anti-hooking mechanism is arranged on the open side of the top of the sock feeding slide rail 2 and is used to shake the socks sent out by the conveying device 1 onto the sock feeding slide rail 2. The anti-hooking mechanism includes a rotation driving member 3 and at least one laterally arranged rotation conveying member 4. The rotation conveying member 4 is provided with an eccentric hole 41, and the output shaft 31 of the rotation driving member 3 is coaxially connected to the eccentric hole 41 on the rotation conveying member 4.

[0034] After adopting the above technical solution, the utility model has the following advantages: In the prior art, since the sock feeding slide rail 2 in the prior art is open, and the socks will loosen up after leaving the conveying device 1, so the socks in the conveying device 1 may be hooked on the device when leaving the conveying device 1, being hooked on the conveying device 1, or on the way of falling onto the sock feeding slide rail 2. Therefore, it is necessary to increase the conveying speed of the conveying device 1 so that the socks can smoothly leave the conveying device 1. However, when the conveying speed of the conveying device 1 is increased, the situation of flying socks will occur. By arranging the anti-hooking mechanism on the open side of the sock feeding slide rail 2, this problem can be solved. Since the output shaft 31 of the rotating driving member 3 is coaxially connected to the eccentric hole 41 on the rotating conveying member 4, when the output shaft 31 rotates, it drives the rotating conveying member 4 to rotate eccentrically. After the rotating conveying member 4 impacts the socks, it can prevent the socks from being hooked on the device in between and help the socks smoothly fall onto the sock feeding slide rail 2.

[0035] Specifically, the cross-section of the rotating conveying member 4 is circular, and the eccentric hole is arranged at a position not coaxial with the axis of the rotating conveying member 4; the sock feeding slide rail 2 is arranged similar to a slide, presenting a semi-open state. When the conveying speed of the conveying device 1 is too fast, the situation of flying socks may occur, and the socks are easily hooked to other positions of the device. The anti-hooking mechanism is arranged on the open side at the top of the sock feeding slide rail 2, that is, on the opposite side of the sock feeding slide rail 2, below the discharge port of the conveying device 1. When eccentrically rotating here, it can impact the socks hooked at the discharge port of the conveying device 1 and thus shake them off onto the sock feeding slide rail 2, so that the speed of the conveying device 1 can be reduced, and the situation of flying socks can also be reduced.

[0036] Preferably, the rotating direction of the side of the rotating conveying member 4 facing the sock feeding slide rail 2 is downward; it can be understood that if the rotating direction of the side of the rotating conveying member 4 facing the sock feeding slide rail 2 is upward, it can also impact and bring down the socks.

[0037] Furthermore, the number of the rotating conveying members 4 is two. The two rotating conveying members 4 are arranged at a vertical interval and a belt 5 is sleeved on the outside. The rotating driving member 3 has two output shafts 31, and the two output shafts 31 are respectively coaxially connected to the eccentric holes 41 on the corresponding rotating conveying members 4.

[0038] By adopting the foregoing technical solution, since the two rotating conveying members 4 are arranged at a vertical interval, by sleeving the belt 5 on the two rotating conveying members 4, the setting of the belt 5 increases the vertical moving area of this mechanism and increases the area that can collide with the socks.

[0039] It can be understood that when the number of the rotating conveying members 4 is multiple, the multiple rotating conveying members 4 are arranged at intervals along the falling direction of the socks, which can better avoid the situation of the socks being hooked on the device.

[0040] Further, a wheel groove 42 for installing a belt 5 is provided on the rotating conveyor 4.

[0041] With the foregoing technical solution, by providing the wheel groove 42 on the rotating conveyor 4, the belt 5 installed on the wheel groove 42 is not easily displaced, enabling the belt 5 to contact the dropped socks over a larger area and helping the socks to enter the sock feeding slide rail 2 more smoothly.

[0042] Further, the rotating conveyor 4 is in the shape of a cylinder.

[0043] With the foregoing technical solution, when the rotating conveyor 4 is a cylinder, the installation of the rotating conveyor 4 is more convenient.

[0044] Further, a sensor for sensing socks is provided at the discharge port of the conveying device 1, and the sensor is electrically connected to a control unit for controlling the rotating drive 3.

[0045] With the foregoing technical solution, by providing a sensor at the discharge port, when a sock passes by the sensor, after the sensor senses the sock, it transmits the sensing signal to the control unit, and then the rotating drive member 3 is started to drive the rotating conveyor 4 to rotate, so that the rotating conveyor 4 can more accurately contact the sock in the air and help the sock to more accurately fall into the sock feeding slide rail 2.

[0046] Preferably, after a sock passes by the sensor, the rotating drive member 3 is started to drive the rotating conveyor 4 to rotate two weeks.

[0047] Further, a bracket 8 is further included. The rotating drive 3 is installed on the bracket 8, and the output shaft 31 is rotatably connected to the bracket 8.

[0048] It can be understood that the bracket 8 is the housing of the sock turning machine device, and this bracket 8 is used to install the anti-hooking mechanism on the sock turning machine.

[0049] Further, the two output shafts 31 are connected by a synchronous transmission mechanism.

[0050] With the foregoing technical solution, by connecting the two output shafts 31 with a synchronous transmission mechanism, the two output shafts 31 can be started and stopped synchronously, which is convenient for controlling the synchronization degree. Compared with using two independently moving output shafts 31, it is easier to control, and it also helps to ensure the synchronization of the two output shafts 31 during eccentric motion, enabling the belt 5 to have a larger contact area to collide with the dropped socks.

[0051] Further, the synchronous transmission mechanism includes two belt pulleys and a synchronous belt. The diameters of the two belt pulleys are the same and are respectively connected to the two output shafts, and the synchronous belt is sleeved on the two belt pulleys.

[0052] Adopting the foregoing technical solution, by connecting pulleys 6 with the same diameter on two output shafts 31 and transmitting power through a synchronous belt 7, the rotation of the two output shafts 31 can be synchronized, and the installation is convenient.

[0053] Embodiment 2:

[0054] On the basis of Embodiment 1, the synchronous transmission mechanism includes two transmission gears and an intermediate gear. The two transmission gears are respectively connected to the two output shafts, and the number of teeth of the two transmission gears is the same and they are adapted to each other. The intermediate gear meshes with the two transmission gears.

[0055] Adopting the foregoing technical solution, by connecting two transmission gears with the same number of teeth and adapted to each other on two output shafts 31 and using an intermediate gear for transmission in the middle, the transmission of the two output shafts 31 is more accurate and more timely.

[0056] Embodiment 3:

[0057] On the basis of Embodiment 1, the synchronous transmission mechanism includes two sprockets and a chain. The two sprockets are respectively connected to the two output shafts, and the number of teeth of the two sprockets is the same and they are adapted to each other. The chain is sleeved on the two sprockets.

[0058] Adopting the foregoing technical solution, by installing two sprockets with the same number of teeth and adapted to each other on two output shafts 31 and using a chain for transmission, the two output shafts 31 rotate synchronously. The installation of the sprockets is more convenient and the transmission is accurate.

[0059] In addition to the above preferred embodiments, the present invention has other implementation manners. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope claimed by the present invention.

Claims

1. An anti-hooking mechanism for a sock turning machine, the sock turning machine comprising a conveying device and a sock feeding slide rail with a top end connected to the conveying device, characterized in that, The anti-hooking mechanism is arranged on the open side at the top of the sock feeding slide rail and is used to shake the socks sent out by the conveying device onto the sock feeding slide rail. The anti-hooking mechanism includes a rotational driving member and at least one laterally arranged rotational conveying member. The rotational conveying member is provided with an eccentric hole, and the output shaft of the rotational driving member is coaxially connected to the eccentric hole on the rotational conveying member.

2. The anti-hooking mechanism for a sock turning machine according to claim 1, wherein The number of the rotational conveying members is two. The two rotational conveying members are arranged vertically at intervals and are sleeved with a belt on the outside. The rotational driving member has two output shafts, and the two output shafts are respectively coaxially connected to the eccentric holes on the corresponding rotational conveying members.

3. The anti-hooking mechanism for a sock turning machine according to claim 2, characterized in that, The two output shafts are connected by a synchronous transmission mechanism.

4. The anti-hooking mechanism for a sock turning machine according to claim 3, characterized in that, The synchronous transmission mechanism includes two belt pulleys and a synchronous belt. The diameters of the two belt pulleys are the same and are respectively connected to the two output shafts, and the synchronous belt is sleeved on the two belt pulleys.

5. The anti-hooking mechanism for a sock turning machine according to claim 3, characterized in that, The synchronous transmission mechanism includes two transmission gears and an intermediate gear. The two transmission gears are respectively connected to the two output shafts, and the number of teeth of the two transmission gears is the same and they are adapted. The intermediate gear meshes with the two transmission gears.

6. The anti-hooking mechanism for a sock turning machine according to claim 3, characterized in that, The synchronous transmission mechanism includes two sprockets and a chain. The two sprockets are respectively connected to the two output shafts, and the number of teeth of the two sprockets is the same and they are adapted. The chain is sleeved on the two sprockets.

7. The anti-hooking mechanism for a sock turning machine according to claim 2, characterized in that, The rotational conveying member is provided with a pulley groove for installing the belt.

8. The anti-hooking mechanism for a sock turning machine according to claim 1, characterized in that, The shape of the rotational conveying member is cylindrical.

9. The anti-hooking mechanism for a sock turning machine according to claim 1, characterized in that, A sensor for sensing the socks is arranged at the discharge port of the conveying device, and the sensor is electrically connected to a control unit for controlling the rotational driver.

10. The anti-hooking mechanism for a sock turning machine according to claim 1, characterized in that, It further includes a bracket. The rotational driving member is installed on the bracket, and the output shaft is rotatably connected to the bracket.