A feeding device for a socks production line

By designing feeding devices for sock production lines, including flip-type sock storage mechanisms and breaking components, the problem of automatic feeding of socks is solved and an efficient and automated production process is achieved.

CN115849046BActive Publication Date: 2025-05-23ZHEJIANG HUAER TEXTILE TECH
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202211695237.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-12-28
Publication Date
2025-05-23
Estimated Expiration
2042-12-28

AI Technical Summary

Technical Problem

In the existing sock production line, how to achieve automatic feeding of socks and improve production efficiency and automation has become a difficult problem in the industry.

Method used

A feeding device for a sock production line is designed, including a flip-type sock storage mechanism, a conveyor belt and a breaking assembly. The flip sock storage mechanism realizes the automatic throwing and conveying of socks through the cooperation of the drum and the power roller; the dispersing component realizes the spreading and laying of the socks through the cooperation of the inclined slide rod and the plywood.

Benefits of technology

Through this device, the automatic feeding of socks is realized, the production efficiency and automation are improved, and the demand for manual operation is reduced.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN115849046B_ABST
    Figure CN115849046B_ABST
Patent Text Reader

Abstract

The present invention relates to a sock production equipment, in particular to a feeding device for a sock production line, including a conveyor frame, a flip-type sock storage mechanism, an active rod, a driven rod, a conveyor belt and a conveying motor, wherein the flip-type sock storage mechanism includes a base frame, two power rollers, a flip motor and a roller directly or indirectly against each of the power rollers, one side of the roller has an opening, the opening is covered with a cover plate directly or indirectly fixedly connected to the base frame, the cover plate is provided with a feeding port and a discharging port, and one end of the conveyor belt is inserted into the inner cavity of the roller from the discharging port. By setting up a flip-type sock storage mechanism and inserting one end of the conveyor belt into the roller of the flip-type sock storage mechanism, the socks can be directly loaded into the roller when in use, the socks are thrown to the feeding end of the conveyor belt by the rotating part of the roller, and the socks are then transported to the next station of the assembly line by the conveyor belt, and the production efficiency and automation level are relatively high.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The invention relates to socks production equipment, in particular to a feeding device used for a socks production line. Background Art

[0002] After knitting, hosiery products need to go through multiple processes such as flattening, folding, and packaging, and materials need to be circulated between each process. In traditional production processes, each process is usually completed in an independent workstation or workshop, and materials are transferred through turnover boxes, which has a long turnover cycle and relatively low production efficiency.

[0003] With the development of assembly line production technology, many knitted socks manufacturers are trying to apply assembly line production to the production process of socks. However, since knitted socks are usually piled up in a disorderly manner in a material frame or bag after weaving, how to make these socks slowly fall to the input end of the assembly line to achieve automatic feeding has always been a difficult problem in the industry. The current practice in the industry is usually to set up a manual feeding station at the input end of the assembly line to move these socks placed in the material frame or bag to the input end of the assembly line, and the production efficiency and degree of automation are relatively low.

[0004] In view of this, the present applicant conducted an in-depth study on the structure of a feeding device for a socks production line, which resulted in this case. Summary of the invention

[0005] The object of the present invention is to provide a feeding device for a sock production line with relatively high production efficiency and automation degree.

[0006] In order to achieve the above object, the present invention adopts the following technical solution:

[0007] A feeding device for a sock production line comprises a conveyor frame, a flip-type sock storage mechanism, an active rod and a driven rod respectively rotatably connected to the conveyor frame, a conveyor belt wound between the active rod and the driven rod, and a conveying motor for driving the active rod to rotate. The flip-type sock storage mechanism comprises a base frame fixedly arranged relative to the conveyor frame, two power rollers arranged in parallel and respectively rotatably connected to the base frame, a flip motor for driving each of the power rollers to rotate, and a roller directly or indirectly abutting against each of the power rollers, one side of the roller has an opening, the opening is covered with a cover plate directly or indirectly fixedly connected to the base frame, a feeding port and a discharging port are provided on the cover plate, and one end of the conveyor belt penetrates into the inner cavity of the roller from the discharging port.

[0008] As an improvement of the present invention, a plurality of sock-turning plates are fixedly connected to the circumferential side walls of the inner cavity of the drum.

[0009] As an improvement of the present invention, a plurality of sock turning buckets are fixedly connected to the circumferential side walls of the inner cavity of the drum, and the sock turning buckets include a support plate fixedly connected to the drum, an inclined support plate fixedly connected to one end of the support plate facing the central axis of the drum, and two material plates respectively fixedly connected to the inclined support plates, an angle is formed between the support plate and the inclined support plates, the two material plates are fixedly connected to the support plate at the same time, the spacing between the two material plates gradually increases from one end connected to the inclined support plate toward the other end, and a sock turning cavity is formed between the two material plates.

[0010] As an improvement of the present invention, one end of each of the material plates away from the support plate is fixedly connected to a sock blocking plate, and each of the sock blocking plates is staggered with the corresponding sock turning cavity.

[0011] As an improvement of the present invention, the cover plate is fixedly connected to a feeding box at a position corresponding to the feeding port, and the feeding box includes a box body fixedly connected to the cover plate, and the box body has a feeding port connected to the feeding port on the side facing the cover plate, a feeding port is provided on one of the circumferential side walls of the box body, and the bottom of the inner cavity of the box body is gradually inclined upward from the side relatively close to the cover plate to the corresponding other side.

[0012] As an improvement of the present invention, the box body is rotatably connected to a discharge box at a position below the feed port, and one end of the discharge box has a material transfer port. When the discharge box rotates to a position close to the box body, the discharge box covers the feed port, and the material transfer port and the feed port are connected to each other.

[0013] As an improvement of the present invention, a lock rod is rotatably connected to the box body, a lock groove is formed at one end of the lock rod, and a lock buckle cooperating with the lock groove is fixedly connected to the discharge box.

[0014] As an improvement of the present invention, it also includes a breaking up component located above the conveying surface of the conveyor belt, the breaking up component includes an inclined sliding rod directly or indirectly fixedly connected to the conveying frame, an inclined sliding seat slidably connected to the inclined sliding rod, an inclined sliding cylinder for driving the inclined sliding seat to slide, two transverse moving seats respectively connected to the inclined sliding seats in a horizontal sliding manner, transverse moving cylinders respectively matched one-to-one with each of the transverse moving seats, and clamps respectively fixedly connected to the piston rods of each of the transverse moving cylinders, the inclined sliding rod is arranged to be inclined from bottom to top gradually toward the feeding end of the conveyor belt, the sliding direction of the transverse moving seat is arranged perpendicular to the length direction of the conveyor belt, a spacing is formed between the clamp and the conveying surface of the conveyor belt, and the two clamps are arranged vertically and corresponding to each other.

[0015] As an improvement of the present invention, a base plate located below the conveyor belt is fixedly connected to the conveyor frame, a return channel is formed between the base plate and the conveyor belt, a pushing cylinder located at the discharge end of the conveyor belt away from the breaking up component is connected to the base plate, the piston rod of the pushing cylinder is horizontally facing the return channel, and a pushing plate is fixedly connected to the piston rod of the pushing cylinder.

[0016] As an improvement of the present invention, an identification camera is arranged above the discharge end of the conveyor belt, and a sock clamping robot is arranged next to the discharge end of the conveyor belt.

[0017] By adopting the above scheme, the present invention has the following beneficial effects:

[0018] 1. By setting up a flip-type sock storage mechanism and inserting one end of the conveyor belt into the drum of the flip-type sock storage mechanism, the socks can be directly loaded into the drum when in use, and the socks are thrown to the feeding end of the conveyor belt by the rotating part of the drum, and then the conveyor belt is used to transport the socks to the next station of the assembly line. The production efficiency and degree of automation are relatively high.

[0019] 2. By setting up a feeding box, there is no need to reach into the drum when feeding, which makes it convenient to feed socks without stopping the rotation of the drum, which helps to further improve production efficiency.

[0020] 3. Through the scattering component above the conveying surface of the conveyor belt, the socks on the upper part of the sock pile on the conveyor belt are continuously clamped and conveyed in the reverse direction by the scattering component, so that the sock pile is flattened and the socks are spread flat on the conveying surface, which is convenient for the subsequent process.

[0021] 4. By setting up a return channel, the socks that have not been taken away at the discharge end of the conveyor belt can be recovered in time to avoid the accumulation of socks in the next process and affect the working sequence of the entire assembly line. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] Figure 1 It is a schematic diagram of the structure of the feeding device in the embodiment;

[0023] Figure 2 This is a schematic diagram of the structure of the flip-type sock storage mechanism in the embodiment, in which some parts such as the drum are omitted;

[0024] Figure 3 It is a structural schematic diagram of the sock pile scattering and conveying mechanism in the embodiment;

[0025] Figure 4 2. It is a schematic structural diagram from another perspective of the sock pile scattering and conveying mechanism in the embodiment.

[0026] The markings in the figure correspond to the following:

[0027] 10- conveyor frame; 11- active rod;

[0028] 12-driven rod; 13-conveyor belt;

[0029] 14-driving motor; 15-partition plate;

[0030] 20- Break up the components;

[0031] 21- inclined slide rod; 22- inclined slide seat;

[0032] 23- inclined sliding cylinder; 24- transverse seat;

[0033] 25-transverse cylinder; 26-clamping plate;

[0034] 27-guide slide bar; 30-front baffle;

[0035] 40-rear baffle; 50-bottom plate;

[0036] 51-push cylinder; 52-push plate;

[0037] 60- flip-type sock storage mechanism; 61- base frame;

[0038] 62-power roller; 63-turning motor;

[0039] 64- roller; 65- cover plate;

[0040] 70-sock turning bucket; 71-supporting plate;

[0041] 72- oblique support plate; 73- material plate;

[0042] 74-sock guard;

[0043] 81-box body; 82-discharge box;

[0044] 83-locking rod; 84-locking catch. DETAILED DESCRIPTION

[0045] The present invention is further described below in conjunction with the accompanying drawings and specific embodiments.

[0046] like Figure 1-Figure 4As shown, this embodiment provides a feeding device for a sock production line, including a conveyor frame 10, a flip-type sock storage mechanism 60, an active rod 11 and a driven rod 12 respectively connected to the conveyor frame 10, a conveyor belt 13 wound between the active rod 11 and the driven rod 12, and a conveyor motor 14 for driving the active rod 11 to rotate, wherein the specific transmission connection structure between the conveyor motor 14 and the active rod 11 can be a conventional structure, such as a belt drive or a chain drive, etc., which will not be described in detail here. The conveyor belt 13 forms a conveying section between the active rod 11 and the driven rod 12 and a circulation section located below the conveying section, and the upper side of the conveying section forms a conveying surface, one end of the conveying surface serves as a feeding end, and the other end serves as a discharging end.

[0047] Preferably, the feeding device for the sock production line provided in this embodiment further includes a scattering assembly 20 located above the conveying surface of the conveyor belt 13. Specifically, the scattering assembly 20 is located between the feeding end and the discharging end of the conveyor belt 13. The conveyor frame 10, the active rod 11 and the driven rod 12, the conveyor belt 13, the conveying motor 14 and the scattering assembly 20 together constitute a sock pile scattering conveying mechanism.

[0048] The disintegration assembly 20 includes an inclined slide bar 21 directly or indirectly fixedly connected to the conveyor frame 10, an inclined slide seat 22 slidably connected to the inclined slide bar 21, an inclined slide cylinder 23 for driving the inclined slide seat 22 to slide, two transverse movement seats 24 respectively horizontally slidably connected to the inclined slide seat 22, transverse movement cylinders 25 respectively matched one-to-one with each transverse movement seat 24, and clamps 26 respectively fixedly connected to the piston rods of each transverse movement cylinder 25, wherein the inclined slide bar 21 is arranged to be gradually inclined from bottom to top toward the feeding end of the conveyor belt 13, the sliding direction of the transverse movement seat 24 is arranged perpendicular to the length direction of the conveyor belt 13, and a guide slide bar 27 horizontally slidably connected to the inclined slide seat 22 is fixedly connected to the transverse movement seat 24, which helps to improve the movement accuracy, and the two clamps 26 are arranged vertically and corresponding to each other, and a spacing is formed between the lower end of each clamp 26 and the conveying surface of the conveyor belt 13, and the spacing is slightly larger than the height of the partition 15.

[0049] Preferably, each clamping plate 26 is provided with vertically arranged strip holes, and connecting bolts spirally connected to the corresponding transverse shift seat 24 are inserted into the strip holes, so as to facilitate adjustment of the distance between the clamping plate 26 and the conveying surface of the conveyor belt 13 to adapt to the production of different similar socks.

[0050] The flip-type sock storage mechanism 60 includes a base frame 61 fixedly arranged relative to the conveyor frame 10, two power rollers 62 arranged in parallel and rotatably connected to the base frame 61, a flip motor 63 for driving each power roller 62 to rotate, and a roller 64 directly or indirectly resting on each power roller 62, wherein the base frame 61 and the conveyor frame 10 can be fixedly connected to the ground or the same frame respectively, so as to achieve a relatively fixed arrangement of the two. In this embodiment, the base frame 61 is directly fixedly connected to the conveyor frame 10. The specific transmission connection structure between the flip motor 63 and the two power rollers 62 can be a conventional structure, such as connecting through a gear assembly or a chain assembly, etc. In this embodiment, the two power rollers 62 are connected to the output shaft of the flip motor 63 through a conventional belt assembly, so as to achieve a transmission connection between the flip motor 63 and the two power rollers 62. The central axis of the drum 64 is arranged parallel to the two power rollers 62, the two power rollers 62 are located on the same horizontal plane, and the distance between the two power rollers 62 is smaller than the diameter of the drum 64, so that the two power rollers 62 can support the drum 64. In addition, it is best to set a rubber sleeve or a rubber wheel on the power roller 62, and the drum 64 indirectly rests on the power roller 62 by resting on the rubber sleeve or the rubber wheel, which helps to increase the friction and prevent the power roller 62 from slipping when driving the drum 64 to rotate. It should be noted that only one power roller 62 can be connected to the flip motor 63 by transmission, and the other power roller 62 can be indirectly driven by the flip motor 63 by the way of being driven to rotate by the drum 64. Similarly, the flip motor 63 can also directly drive or indirectly drive the drum 64 to rotate through a gear assembly, and the two power rollers 62 rotate under the drive of the drum 64 and are indirectly driven by the flip motor 63.

[0051] The drum 64 has an opening on one axial side, and the opening is covered with a cover plate 65 that is directly or indirectly fixedly connected to the base frame 61. The cover plate 65 can prevent the socks inside the drum 64 from flowing out of the opening and will not rotate with the drum 64. The cover plate 65 is provided with a feeding port and a discharging port, and the feeding port and the discharging port are staggered in the horizontal and vertical directions. A plurality of sock turning plates or sock turning buckets 70 are fixedly connected to the circumferential side walls of the inner cavity of the drum 64, so as to better lift the socks in the drum 64. In this embodiment, the sock turning bucket 70 is fixedly connected to the circumferential side walls of the inner cavity of the drum 64 as an example for explanation. The sock turning bucket 70 includes a support plate 71 that is directly or indirectly fixedly connected to the drum 64 through a connecting piece, an inclined support plate 72 that is fixedly connected to one end of the support plate 71 facing the central axis of the drum 64, and two material plates 73 that are respectively fixedly connected to the inclined support plate 72, wherein The support plate 71 and the oblique support plate 72 can be fixedly connected in an integral manner, and an angle is formed between the two, and the angle is an obtuse angle. The two material plates 73 are fixedly connected to the support plate 71 at the same time, that is, each material plate 73 is fixedly connected to the support plate 71 and the oblique support plate 72 at the same time, and the spacing between the two material plates 73 gradually increases from one end connected to the oblique support plate 72 to the other end, and a sock turning cavity is formed between the two material plates 73, which helps to concentrate the lifted socks on the conveyor belt 13 to be mentioned below. Preferably, a sock blocking plate 74 is fixedly connected to one end of each material plate 73 away from the support plate 71, and each sock blocking plate 74 is staggered with the corresponding sock turning cavity to prevent the socks from being thrown to the side of the material plate 73 away from the corresponding sock turning cavity. Of course, the sock blocking plate 74 can also be used to close or semi-close the space surrounded by the side of the material plate 73 away from the corresponding sock turning cavity and the support plate 71 and the oblique support plate 72 to prevent the socks from entering the space.

[0052] When in use, socks can be poured directly into the drum 64 from the feeding port. However, if the socks are poured directly into the drum 64 from outside the feeding port, the socks are likely to fall outside the drum 64. If the socks are poured into the drum 64 by extending into the drum 64, the machine needs to be stopped for operation. Otherwise, the socks are easily injured by the sock turning plate or the sock turning bucket 70, and the socks in the drum 64 are also easily thrown out. In order to avoid the above problems, in this embodiment, the cover plate 65 is fixedly connected to a feeding box at a position corresponding to the feeding port. The feeding box includes a fixed The box body 81 is fixedly connected to the cover plate 65, and the box body 81 has a blanking port connected with the feeding port on the side facing the cover plate 65. A feeding port is opened on one of the circumferential side walls of the box body 81. Of course, the feeding port and the blanking port are located on different side walls. In addition, the bottom of the inner cavity of the box body 81 is gradually inclined upward from the side relatively close to the cover plate 65 to the corresponding other side. In this way, after the socks are fed into the box body 81 from the feeding port, they will flow into the drum 64 through the feeding port along the inclined bottom surface.

[0053] Preferably, the box body 81 is rotatably connected to the discharge box 82 at a position below the feed inlet, and the rotational connection shaft between the two is arranged horizontally. One end of the discharge box 82 has a material transfer opening. When the discharge box 82 rotates to a position close to the box body 81, the discharge box 82 covers the feed inlet, and the material transfer opening and the feed inlet are connected to each other. When the discharge box 82 flips downward from the position covering the feed inlet to the extreme position, the side wall of the discharge box 82 abuts against the side wall of the box body 81, and the material transfer opening is connected to the feed inlet. The box body 81 is arranged upward. In addition, a locking rod 83 is rotatably connected to the box body 81, and a locking groove is opened at one end of the locking rod 83. A lock buckle 84 cooperating with the locking groove is fixedly connected to the discharge box 82. In this way, the socks can be poured into the discharge box 82 first, and then poured into the box body 81 by turning over the discharge box 82. It is more convenient to use, and when no feeding is needed, the discharge box 82 can be locked to the box body 81 by the locking rod 83 to close the feed port to avoid other items being accidentally put into the drum 64.

[0054] One end of the conveyor belt 13 penetrates into the inner cavity of the drum 64 from the discharge port, and this end is the feed end of the conveyor belt 13. When in use, the socks in the drum 64 are lifted from the bottom of the drum 64 and thrown to the feed end of the conveyor belt 13 under the action of the sock turning plate or the sock turning bucket 70. At this time, the conveyor belt 13 does not move, and the socks are arranged in a pile at the feed end of the conveyor belt 13. In order to ensure that the socks can be accurately thrown to the feed end of the conveyor belt 13, if necessary, a guide mechanism (such as a conventional guide plate or a guide hopper, etc.) fixedly connected to the conveyor frame 10 or the cover plate 65 can also be set at the feed end position of the conveyor belt 13.

[0055] During use, when the pile of socks is transported to the position corresponding to the scattering component 20, the conveyor belt 13 stops moving, and the two transverse cylinders 25 respectively drive the two clamping plates 26 to move toward each other to clamp the socks on the upper part of the sock pile. Then the inclined sliding cylinder 23 drives the inclined sliding seat 22 to slide upward along the inclined sliding rod 21 to transport the clamped socks toward the feeding end, and then the transverse cylinder 25 is used to drive the two clamping plates 26 to move away from each other, so that the socks fall onto the conveyor belt 13 under the action of gravity. After that, the scattering component 20 is reset, and the conveyor belt 13 continues to move to transport the next sock pile to the position corresponding to the scattering component 20, and the above actions are repeated.

[0056] Preferably, a plurality of equally spaced partitions 15 are fixedly connected to the outer peripheral surface of the conveyor belt 13, so that the socks can be stacked easily, and the materials in the return channel mentioned below can be pushed by the partitions 15. The partitions 15 are preferably made of hard rubber with a certain elastic deformation capacity.

[0057] A front baffle 30 and a rear baffle 40 are also provided above the conveying surface of the conveyor belt 13, which are directly or indirectly fixedly connected to the conveyor frame 10. In the present embodiment, the front baffle 30 and the rear baffle 40 are fixedly connected to the conveyor frame 10 via brackets respectively, and the connection structure between the front baffle 30 and the rear baffle 40 and the corresponding bracket brackets is the same as the connection structure between the clamping plate 26 and the transverse displacement seat 24, that is, the height position of the front baffle 30 and the rear baffle 40 can also be adjusted.

[0058] The front baffle 30 is a metal plate, which is located on the side of the scattering assembly 20 facing the feeding end of the conveyor belt 13, and the front baffle 30 is arranged to be gradually inclined from bottom to top toward the discharge end of the conveyor belt 13, so that the relatively high sock pile can be pre-flattened to avoid the scattering assembly 20 having to flatten too many socks and affecting the flattening effect of the socks. Considering that the existence of the front baffle 30 may push the socks off the conveyor belt 13, it is best to set a component for receiving socks, such as a material frame, below the feeding end of the conveyor belt 13.

[0059] The rear baffle 40 is a flexible plate with a certain elastic deformation ability, which is located on the side of the discharging end of the scattering assembly 20 facing the conveyor belt 13, and is used to prevent the unflattened socks from being directly sent to the discharging end of the conveyor belt 13. At the same time, the lower part of the rear baffle 40 has a wavy structure, which can comb the socks so that the socks on the conveyor belt 13 are roughly arranged along the length direction of the conveyor belt 13, which is convenient for the subsequent process.

[0060] An identification camera (not shown) is arranged above the discharge end of the conveyor belt 13, and a sock clamping robot (not shown) is arranged beside the discharge end of the conveyor belt 13. In this way, the identification camera is used to take pictures to identify the socks and the position of the sock openings laid on the discharge end of the conveyor belt 13, and then the sock clamping robot is used to take the socks away, thereby realizing automatic feeding of the sock production line.

[0061] Considering that after the socks are flattened by the scattering assembly 20, some socks may still overlap each other, and the socks stacked below will not be taken away by the sock clamping robot, therefore, in this embodiment, a bottom plate 50 located below the circulation section of the conveyor belt 13 is fixedly connected to the conveyor frame 10, a return channel is formed between the bottom plate 50 and the conveyor belt 13, and the end of the bottom plate 50 corresponding to the discharge end of the conveyor belt 13 is located on the side of the discharge end of the conveyor belt 13 away from the scattering assembly 20, so as to receive the socks dropped from the discharge end of the conveyor belt 13, and the other end of the bottom plate 50 passes through the cover plate 65 and extends into the drum 64, so that the socks flowing out of the return channel can flow back into the drum 64. In addition, a push cylinder 51 located on the side of the discharge end of the conveyor belt 13 away from the scattering assembly 20 is connected to the bottom plate 50, the piston rod of the push cylinder 51 is horizontally facing the return channel, and a push plate 52 is fixedly connected to the piston rod of the push cylinder 51. When in use, the socks that have not been taken away from the discharge end of the conveyor belt 13 will fall onto the bottom plate 50 under the action of gravity, and then the pushing cylinder 51 will push these socks into the return channel, so that they flow back to the bottom of the feed end of the conveyor belt 13 and fall into the drum 64 under the action of gravity.

[0062] The present invention is described in detail above with reference to the accompanying drawings, but the embodiments of the present invention are not limited to the above embodiments. Those skilled in the art can make various changes and applications to the present invention based on the prior art, such as replacing the cylinder in the above embodiment with a hydraulic cylinder or a push rod motor, etc., which all fall within the scope of protection of the present invention.

Claims

1. A feeding device for a socks production line, comprising a conveyor frame, It is characterized in that The utility model also comprises a flip-type sock storage mechanism, an active rod and a driven rod respectively connected to the conveying frame in rotation, a conveying belt wound between the active rod and the driven rod, and a conveying motor for driving the active rod to rotate. The flip-type sock storage mechanism comprises a base frame fixedly arranged relative to the conveying frame, two power rollers arranged in parallel with each other and respectively connected to the base frame in rotation, a flip motor for driving each of the power rollers to rotate, and a roller directly or indirectly abutting against each of the power rollers, one side of the roller has an opening, the opening is covered with a cover plate directly or indirectly connected to the base frame, a feeding port and a discharging port are provided on the cover plate, and one end of the conveying belt penetrates into the inner cavity of the roller from the discharging port; A plurality of sock-turning buckets are fixedly connected to the circumferential side wall of the inner cavity of the drum, and the sock-turning buckets include a support plate fixedly connected to the drum, an oblique support plate fixedly connected to one end of the support plate facing the central axis of the drum, and two material plates respectively fixedly connected to the oblique support plates, an angle is formed between the support plate and the oblique support plates, the two material plates are fixedly connected to the support plate at the same time, the spacing between the two material plates gradually increases from one end connected to the oblique support plate to the other end, and a sock-turning cavity is formed between the two material plates; The cover plate is fixedly connected with a feeding box at a position corresponding to the feeding port, and the feeding box includes a box body fixedly connected to the cover plate, and the box body has a feeding port connected with the feeding port on one side facing the cover plate, and a feeding port is provided on one circumferential side wall of the box body, and the bottom of the inner cavity of the box body is gradually inclined upward from the side relatively close to the cover plate to the corresponding other side; The conveyor belt is provided with a plurality of movable parts, and the movable parts are provided with a plurality of movable parts, and the movable parts are provided with a plurality of movable parts.

2. The feeding device for a socks production line according to claim 1, It is characterized in that A plurality of sock turning plates are fixedly connected to the circumferential side wall of the inner cavity of the drum.

3. The feeding device for a socks production line according to claim 1, It is characterized in that One end of each material plate away from the support plate is fixedly connected with a sock blocking plate, and each sock blocking plate is staggered with the corresponding sock turning cavity.

4. The feeding device for a socks production line according to claim 1, It is characterized in that The box body is rotatably connected to a discharge box at a position below the feed port, and one end of the discharge box has a material transfer port. When the discharge box rotates to a position close to the box body, the discharge box covers the feed port, and the material transfer port and the feed port are connected to each other.

5. The feeding device for a socks production line according to claim 4, It is characterized in that A lock rod is rotatably connected to the box body, a lock slot is provided at one end of the lock rod, and a lock buckle matched with the lock slot is fixedly connected to the discharge box.

6. A feeding device for a socks production line according to any one of claims 1 to 5, It is characterized in that The conveyor frame is fixedly connected to a base plate located below the conveyor belt, a return channel is formed between the base plate and the conveyor belt, the base plate is connected to a push cylinder located at the discharge end of the conveyor belt away from the breaking up component, the piston rod of the push cylinder is horizontally facing the return channel, and a push plate is fixedly connected to the piston rod of the push cylinder.

7. A feeding device for a socks production line according to any one of claims 1 to 5, It is characterized in that An identification camera is arranged above the discharging end of the conveyor belt, and a sock clamping robot is arranged beside the discharging end of the conveyor belt.

Citation Information

Patent Citations

  • Feeding device for sock production line

    CN219031108U