Sock piece split-flow supply mechanism

By designing the socks diversion supply mechanism, the combination of the drive shaft and push plate is used to achieve automated and uniform supply of socks, solving the problem of inefficient traditional manual supply, and improving the automation and high efficiency of socks production.

CN223060337UActive Publication Date: 2025-07-04ZHEJIANG LUONA SOCKS CO LTD
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Patent Information

Application Number
CN202422347282.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-25
Publication Date
2025-07-04
Estimated Expiration
2034-09-25

AI Technical Summary

Technical Problem

The supply of traditional socks relies on manual operation, resulting in low efficiency and uneven supply, making it difficult to meet the needs of automated production.

Method used

A socks shunt supply mechanism is designed, including a shunt base, a rotating groove, a sliding groove, a baffle and a drive shaft. By driving the push plate to rotate, the limiting groove and a baffle are used to realize the automatic shunt of the socks.

Benefits of technology

It realizes the automation and uniform supply of socks, improves the diversion efficiency, and meets the automation and high efficiency needs of sock production.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a sock piece split-flow supply mechanism which comprises a split-flow base, a rotating groove is formed in the split-flow base, a first sliding groove is formed in one side of the rotating groove, a plurality of second sliding grooves are formed in the other side of the rotating groove, and the rotating groove is connected with the second sliding grooves in a penetrating mode. A first baffle is fixedly connected to the communicating position of the rotating groove and the second sliding groove, a flow dividing opening is formed between the face, close to the bottom face of the second sliding groove, of the first baffle and the bottom face of the second sliding groove, a second baffle is fixedly connected into the rotating groove, and a flow dividing assembly is arranged in the rotating groove. According to the scheme, the rotatable driving rotating shaft and the push plate are arranged in the rotating groove, the push plate is provided with the limiting grooves matched with the sock pieces, the driving rotating shaft drives the push plate to rotate, the sock pieces are blocked by the push plate through the limiting grooves through the second baffles, and then the sock pieces at the bottom are conveyed into the corresponding flow dividing openings; therefore, the purposes of automatically distributing the sock pieces and improving the sock piece distributing efficiency are achieved.
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Description

Technical Field

[0001] The utility model relates to the technical field of sock production, in particular to a sock piece shunting and feeding mechanism. Background Technique

[0002] With the development of technology, especially the application of automation and intelligent technology, the production of the hosiery industry begins to transform towards automation, high efficiency and high quality, and the automatic production of socks depends on the automatic feeding of sock pieces.

[0003] In traditional hosiery production, the feeding of sock pieces may rely on manual operation, which is not only inefficient, but also difficult to ensure the uniformity and accuracy of feeding. Therefore, a feeding mechanism capable of automatically shunting sock pieces is needed. Content of the Utility Model

[0004] (1) Technical Problems to be Solved

[0005] Aiming at the deficiencies of the prior art, the utility model provides a sock piece shunting and feeding mechanism, which solves the problems put forward in the above background technique.

[0006] (2) Technical Solutions

[0007] To achieve the above object, the utility model is realized through the following technical solutions: A sock piece shunting and feeding mechanism, characterized in that: it includes a shunting base, a rotating groove is opened in the shunting base, a first sliding groove is opened on one side of the rotating groove, a plurality of second sliding grooves are opened on the other side of the rotating groove, the rotating groove is connected to the second sliding groove in a through manner, a first baffle is fixedly connected at the connection of the rotating groove and the second sliding groove, a shunting port is arranged between one side of the first baffle close to the bottom surface of the second sliding groove and the bottom surface of the second sliding groove, a second baffle is fixedly connected in the rotating groove, and a shunting component is arranged in the rotating groove.

[0008] Preferably, the shunting component includes a driving rotating shaft and a pushing plate, the driving rotating shaft is rotatably connected to the rotating groove, the pushing plate is fixedly connected to the outer circumferential surface of the driving rotating shaft, a plurality of limiting grooves are opened on the pushing plate, and a touch sensor is fixedly arranged in the limiting grooves.

[0009] Preferably, a third sliding groove is opened on one side edge of the first sliding groove, a third baffle is slidably connected in the third sliding groove, and the third baffle is electrically connected to the touch sensor.

[0010] Preferably, the thickness of the second baffle is equal to the depth of the shunting port.

[0011] Preferably, the sum of the thickness of the shunting port and the thickness of the first baffle is equal to the depth of the second sliding groove.

[0012] Preferably, the shunt base is inclined, and a plurality of support legs are fixedly connected to the bottom of the shunt base.

[0013] (III) Advantageous Effects

[0014] The utility model provides a sock piece shunt feeding mechanism, which has the following advantageous effects:

[0015] 1. In this solution, by arranging a rotatable driving rotating shaft and a push plate in the rotating groove, and opening a plurality of limiting grooves adapted to the sock pieces on the push plate, the driving rotating shaft drives the push plate to rotate. The push plate sends the sock pieces at the bottom to the corresponding shunt ports after blocking the sock pieces through the second baffle through the limiting grooves, so as to achieve the purpose of automatically shunting the sock pieces and improving the shunting efficiency of the sock pieces. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 is the front view structural schematic diagram of the utility model;

[0017] Figure 2 is the top view structural schematic diagram of the utility model;

[0018] Figure 3 is Figure 1 the structural schematic diagram of A in

[0019] In the figure: 11, shunt base; 12, rotating groove; 13, first sliding groove; 14, second sliding groove; 15, first baffle; 16, shunt port; 17, second baffle; 18, support leg; 20, driving rotating shaft; 21, push plate; 22, limiting groove; 23, touch sensor; 24, third sliding groove; 25, third baffle. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0020] The embodiment of the utility model provides a sock piece shunt feeding mechanism, as Figures 1 - 3 shown, including a shunt base 11, a rotating groove 12, a first sliding groove 13, a second sliding groove 14, a first baffle 15, a shunt port 16, a second baffle 17, a support leg 18, a driving rotating shaft 20, a push plate 21, a limiting groove 22, a touch sensor 23, a third sliding groove 24, and a third baffle 25.

[0021] As Figures 1 - 3As shown in the figure, a rotating groove 12 is formed in the flow splitting base 11. A first sliding groove 13 is formed on one side of the rotating groove 12, and a plurality of second sliding grooves 14 are formed on the other side of the rotating groove 12. The rotating groove 12 is connected to the second sliding grooves 14 in a through manner. A first baffle 15 is fixedly connected to the connection part between the rotating groove 12 and the second sliding grooves 14. A flow splitting port 16 is arranged between one side of the first baffle 15 close to the bottom surface of the second sliding groove 14 and the bottom surface of the second sliding groove 14. A second baffle 17 is fixedly connected in the rotating groove 12, and a flow splitting component is arranged in the rotating groove 12.

[0022] The flow splitting component includes a driving rotating shaft 20 and a pushing plate 21. The driving rotating shaft 20 is rotatably connected to the rotating groove 12. A driving power source is built in the flow splitting base 11, and the driving power source is used to drive the driving rotating shaft 20 to rotate. The pushing plate 21 is fixedly connected to the outer circumferential surface of the driving rotating shaft 20. Four limiting grooves 22 are formed on the pushing plate 21. The width of the limiting grooves 22 is equal to the thickness of the flow splitting port 16. A touch sensor 23 is fixedly arranged in the limiting grooves 22. A third sliding groove 24 is formed on one side edge of the first sliding groove 13. A third baffle 25 is slidably connected in the third sliding groove 24. The third baffle 25 is electrically connected to the touch sensor 23.

[0023] It should be noted that a conveyor belt can be arranged in the first sliding groove 13. Both the touch sensor 23 and the third baffle 25 are prior arts. The way of electrically connecting the touch sensor 23 and the third baffle 25 is a prior art. The touch sensor 23 is arranged in the uppermost limiting groove 22, and the thickness of the limiting groove 22 is equal to the thickness of the sock piece.

[0024] The thickness of the second baffle 17 is equal to the depth of the flow splitting port 16. The sum of the thickness of the flow splitting port 16 and the thickness of the first baffle 15 is equal to the depth of the second sliding groove 14. The flow splitting base 11 is inclined, and a plurality of supporting legs 18 are fixedly connected to the bottom of the flow splitting base 11.

[0025] When the sock pieces are split in this solution, first, the driving power source drives the driving rotating shaft 20 to rotate. The driving rotating shaft 20 drives the pushing plate 21 to rotate with the driving rotating shaft 20 as the axis. The sock piece group slides from the first sliding groove 13 into the rotating groove 12. The pushing plate 21 pushes the sock piece group into the rotating groove 12, and the limiting grooves 22 disperse the sock piece group into multiple sock pieces into the corresponding limiting grooves 22.

[0026] Then, when the push plate 21 drives the sock piece to the first diversion port 16, the sock piece at the bottom is blocked by the first second baffle 17 and enters the first second sliding groove 14 through the diversion port 16. One end of the sock piece above that is far from the limit groove 22 drops to the bottom end and enters between the first diversion port 16 and the second diversion port 16. The sock piece that slides to the bottom is blocked by the second second baffle 17 and enters the second second sliding groove 14 through the second diversion port 16. And so on, the sock pieces in the sock piece group are successively diverted into different second sliding grooves 14.

[0027] Finally, when the sock piece touches the contact sensor 23, the contact sensor 23 sends a control signal to the third baffle 25. The third baffle 25 slides into the first sliding groove 13 to block the subsequent sock piece group, thereby preventing the sock pieces from piling up in the rotating groove 12 and affecting the diversion of the sock pieces in the rotating groove 12.

[0028] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A sock piece shunting and feeding mechanism, characterized in that: It includes a flow splitting base (11), a rotating groove (12) is formed in the flow splitting base (11), a first sliding groove (13) is formed on one side of the rotating groove (12), a plurality of second sliding grooves (14) are formed on the other side of the rotating groove (12), the rotating groove (12) is connected to the second sliding groove (14) in a through manner, a first baffle (15) is fixedly connected at the connection part of the rotating groove (12) and the second sliding groove (14), a flow splitting port (16) is arranged between one side of the first baffle (15) close to the bottom surface of the second sliding groove (14) and the bottom surface of the second sliding groove (14), a second baffle (17) is fixedly connected in the rotating groove (12), and a flow splitting component is arranged in the rotating groove (12).

2. The sock piece shunt feeding mechanism according to claim 1, wherein: The flow splitting component includes a driving rotating shaft (20) and a pushing plate (21), the driving rotating shaft (20) is rotatably connected to the rotating groove (12), the pushing plate (21) is fixedly connected to the outer circular surface of the driving rotating shaft (20), a plurality of limiting grooves (22) are formed in the pushing plate (21), and a touch sensor (23) is fixedly arranged in the limiting grooves (22).

3. The sock piece shunt supply mechanism according to claim 2, characterized in that: A third sliding groove (24) is formed on one side edge of the first sliding groove (13), a third baffle (25) is slidably connected in the third sliding groove (24), and the third baffle (25) is electrically connected to the touch sensor (23).

4. A sock piece shunting and feeding mechanism according to claim 1, characterized in that: The thickness of the second baffle (17) is equal to the depth of the flow splitting port (16).

5. The sock piece shunting and feeding mechanism according to claim 1, characterized in that: The sum of the thickness of the flow splitting port (16) and the thickness of the first baffle (15) is equal to the depth of the second sliding groove (14).

6. The sock piece shunting and feeding mechanism according to claim 1, wherein: The flow splitting base (11) is inclined, and a plurality of support legs (18) are fixedly connected to the bottom of the flow splitting base (11).