Auxiliary material recycling device for garment production

CN122806668APending Publication Date: 2026-09-25TAIXING YONGCHANG GARMENT ACCESSORIES CO LTD
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Patent Information

Application Number
CN202611273443.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-08-21
Publication Date
2026-09-25

AI Technical Summary

Technical Problem

[0002]在服装生产及后整理过程中,常需要将水性硅蜡乳液或性质相近的水性整理乳液喷涂在服装表面,以满足相应的整理加工需求,实际喷涂时,部分乳液能够附着在服装表面,仍有一部分细小雾滴会悬浮在喷涂空间内,若该部分雾液不能及时收集,不仅会造成辅料浪费,还容易附着在喷涂空间内壁、管道或设备表面,增加后续清理难度

Benefits of technology

(一)、该一种服装生产用辅料回收装置,通过进料管、内缩壳、泵液环管、喷嘴、伞状挡板和螺旋槽的配合,使外界抽气机送入的含雾气流在喷淋组件内被收束并与环向喷淋液接触,细小水性硅蜡乳液雾滴能够被液幕捕捉并逐步并合,螺旋槽进一步促使液滴沿固定方向汇聚,减少雾液随气流继续外溢和在顶壳内无序挂壁的情况。

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Abstract

The application discloses a kind of clothing production with auxiliary material recovery device, and the present application relates to clothing production auxiliary material recovery technical field.It is including: water pump and defoaming component, the outer wall of the bottom of defoaming component is fixedly connected with the outer wall of water pump by support, the top of defoaming component is fixedly installed with centrifugal component, the top of centrifugal component is fixedly installed with spraying component, spraying component, centrifugal component and defoaming component are coaxially arranged from top to bottom, the water outlet end of water pump is fixedly connected with pumping pipe, the cooperation of the device through feed pipe, inner shrinkage shell, pump liquid ring pipe, nozzle, umbrella baffle and helical groove makes the mist-containing airflow sent by external air pump be collected in spraying component and contact with annular spraying liquid, small water-based silicone wax emulsion droplets can be captured by liquid curtain and gradually combined, helical groove further promotes liquid droplets to converge along fixed direction, reduces the case that mist liquid continues to overflow with airflow and disorderly wall-hanging in top shell.
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Description

Technical Field

[0001] This invention relates to the field of garment production accessory recycling technology, specifically to a garment production accessory recycling device. Background Technology

[0002] In the garment production and finishing process, it is often necessary to spray water-based silicone wax emulsion or similar water-based finishing emulsion onto the garment surface to meet the corresponding finishing requirements. In actual spraying, some emulsion can adhere to the garment surface, but some fine droplets will remain suspended in the spraying space. If this part of the droplet cannot be collected in time, it will not only cause waste of auxiliary materials, but also easily adhere to the inner wall of the spraying space, pipes or equipment surfaces, increasing the difficulty of subsequent cleaning.

[0003] In current production, the mist in the spraying space is usually removed by air extraction. However, the droplets of water-based silicone wax emulsion are small, and it is difficult to effectively gather them into liquid by air extraction alone. At the same time, the extracted mist-containing airflow may also carry clothing fiber dust, lint and larger particulate impurities. If it is directly recycled and reused, it is easy to clog subsequent nozzles or cause uneven spraying. Summary of the Invention

[0004] To achieve the above objectives, the present invention is implemented through the following technical solution: a garment production auxiliary material recycling device, comprising: a water pump and a defoaming component, wherein the outer wall of the bottom of the defoaming component is fixedly connected to the outer wall of the water pump through a bracket, a centrifugal component is fixedly installed on the top of the defoaming component, a spraying component is fixedly installed on the top of the centrifugal component, the spraying component, the centrifugal component and the defoaming component are coaxially arranged from top to bottom, and a pumping pipe is fixedly connected to the water outlet end of the water pump; With the above top-down arrangement, the device allows the mist-laden airflow to first enter the spray assembly for mist collection and liquid gathering, and then pass through the centrifugal assembly and defoaming assembly in sequence to complete filtration, defoaming and reuse. The water pump and pumping pipe then send the bottom recovered liquid back to the spray assembly, thus forming a continuous cycle treatment path.

[0005] The spray assembly includes a feed pipe connected to the feeding end of an external vacuum pump. A top shell is fixedly connected to the bottom of the feed pipe, and an inner shrink shell is fixedly connected to the inner cavity of the top shell. The lower end of the feed pipe is connected to the inner shrink shell. The inner wall of the inner shrink shell is fixedly connected to the outer wall of the nozzle. The nozzles are distributed at an angle. A pump liquid ring pipe is set at the bottom of the inner shrink shell. An umbrella-shaped baffle is fixedly connected to the top of the inner shrink shell. A fixed inner tube is fixedly connected to the bottom of the top shell. The fixed inner tube is a hollow tube. A manifold assembly is rotatably connected inside the fixed inner tube. The top of the manifold assembly is rotatably connected to the inner wall at the center of the inner shrink shell.

[0006] As the core fog-catching structure at the front end of the device, the spray assembly can use the inner shell to concentrate the fog-containing airflow and adsorb small droplets of water-based silicone wax emulsion in the air through the circumferential liquid curtain sprayed by the nozzle. The umbrella-shaped baffle and spiral groove further guide the droplets to merge and converge along the circumference, reducing the situation where the droplets directly pass through the device or adhere to the inner wall of the top shell.

[0007] Preferably, the manifold assembly includes a liquid-throwing shell rotatably connected to the inner wall of a fixed inner tube. A quick-connect cone block is fixedly connected to the inner wall at the center of the liquid-throwing shell. A first magnetic block is fixedly connected to the inner wall at the bottom of the quick-connect cone block. A drive shaft is fixedly connected to the top of the quick-connect cone block. The drive shaft is fixedly connected to the liquid-collecting shell via a bracket. The bottom of the liquid-collecting shell is connected to the liquid-throwing shell via a spiral return pipe, and the top of the spiral return pipe is fixedly connected to the bottom of the liquid-collecting shell.

[0008] The recovered liquid collected in the collection tank flows down through the spiral reflux pipe and enters the liquid-throwing shell. The spiral reflux pipe extends the liquid flow path, while the liquid-throwing shell disperses the liquid outward in a thinner liquid layer, making the distribution of the recovered liquid more uniform before entering the centrifugal assembly.

[0009] Preferably, the outer wall of the top of the liquid collection shell is rotatably connected to the inner wall at the center of the inner shrinking shell, the outer wall of the middle part of the liquid collection shell is rotatably connected to the inner wall of the top shell, the inner wall of the top shell is fixedly connected to the outer wall of the pumping ring pipe, and the liquid inlet end of the pumping ring pipe is fixedly connected to the top of the pumping pipe.

[0010] Preferably, the centrifugal assembly includes a middle shell fixedly installed at the bottom of the top shell. A limiting ring is fixedly connected to the inner wall of the middle shell. The limiting ring is arranged in a linear array along the central axis of the middle shell. A liquid guiding cone is rotatably connected to the inner wall of the top of the middle shell through a fixed groove seat. A spiral blade is fixedly connected to the inner wall of the middle part of the liquid guiding cone. A bottom blade is fixedly connected to the inner wall of the bottom of the liquid guiding cone. The spiral blade and the bottom blade are arranged in a circular array along the central axis of the liquid guiding cone. A centrifugal separation tube is fixedly connected to the inner wall of the liquid guiding cone. A fine-pore filter cover is fixedly installed on the inner wall of the centrifugal separation tube.

[0011] The centrifugal assembly is used to receive the emulsion mixture fed into the spray assembly. During rotation, the centrifugal separation tube and fine pore filter cover trap fiber dust, lint and larger particulate impurities. The liquid guiding cone, spiral blades and bottom blades guide the filtered recovery liquid downward into the defoaming assembly.

[0012] Preferably, a quick-connect shaft is rotatably connected to the inner wall at the center of the centrifugal separator tube. The inner teeth at the bottom of the quick-connect shaft mesh with a transmission gear, which meshes with a gear rod. The outer wall of the gear rod is rotatably connected to the conical disk at the bottom of the centrifugal separator tube.

[0013] Preferably, a fixed column is rotatably connected to the inner wall of the transmission gear, the top of the fixed column is fixedly connected to the bottom of the quick-connect shaft, the transmission gear meshes with the gear at the top of the gear rod, a second magnetic block is fixedly connected to the inner wall of the quick-connect shaft, the second magnetic block is magnetically attracted to the first magnetic block, and the top of the quick-connect shaft is inserted into the bottom of the quick-connect cone block.

[0014] With the transmission cooperation of gear rod, transmission gear, quick-connect rotating shaft and quick-connect cone block, the confluence component in the spray assembly can form a relative rotation in the opposite direction with the centrifugal separation tube in the centrifugal assembly. When the thin liquid flow thrown out by the liquid slinger enters the centrifugal separation tube, it is subjected to reverse shearing, which is beneficial to disperse the emulsion droplets and entrain the fluff, and improve the uniformity of liquid passing through the filter cover.

[0015] Preferably, the defoaming assembly includes a bottom shell fixedly installed at the bottom of the middle shell. The outer wall of the bottom shell is fixedly connected to the outer wall of the water pump via a bracket. A defoaming mesh is movably installed on the inner wall of the bottom shell via a soft pad. A dual-head motor is fixedly connected to the inner wall at the center of the bottom shell via a bracket. A stirring paddle is fixedly connected to the output end of the dual-head motor at the bottom. The stirring paddle is located inside the bracket. A baffle is fixedly connected to the outer wall of the bracket, and the baffle is arranged in a circular array along the central axis of the bracket. A diverter shaft is fixedly connected to the output end of the dual-head motor at the top. A rotating ring is connected to the upper end of the outer wall of the diverter shaft via a transmission frame. A first magnet is fixedly connected to the bottom of the rotating ring. A top spring is fixedly connected to the inner wall at the bottom of the bottom shell. A turbulence group is fixedly connected to the end of the top spring away from the bottom shell.

[0016] Preferably, a second magnet is fixedly connected to the top of the turbulence assembly, the second magnet and the first magnet have magnetic poles that repel each other, a limit post is fixedly connected to the inner wall of the bottom of the bottom shell, and the outer wall of the limit post is slidably connected to the bottom of the turbulence assembly.

[0017] Preferably, the output end of the dual-head motor is fixedly connected to a power rod, the top of the power rod is inserted into the bottom of the gear rod, and the outer wall of the splitting shaft is rotatably connected to an inner baffle and an outer baffle, forming an annular gap between the inner baffle and the outer baffle.

[0018] The defoaming component is located at the end of the circulation path. After the recovered liquid enters the bottom shell, it is first diverted and buffered by the inner and outer baffles, and then the foam is broken by the turbulence group, stirring paddle, baffle and defoaming net group, so that the recovered liquid entering the water pump and nozzle maintains a relatively stable liquid output state.

[0019] This invention provides a device for recycling auxiliary materials used in garment production. It has the following beneficial effects: (i) The garment production auxiliary material recycling device, through the cooperation of the feed pipe, inner shrink shell, pump liquid ring pipe, nozzle, umbrella-shaped baffle and spiral groove, allows the mist-containing airflow sent by the external air pump to be gathered in the spray assembly and come into contact with the circumferential spray liquid. The fine water-based silicone wax emulsion droplets can be captured by the liquid curtain and gradually merge. The spiral groove further promotes the droplets to converge in a fixed direction, reducing the situation where the mist continues to overflow with the airflow and hangs disorderly on the wall inside the top shell.

[0020] (ii) The garment production auxiliary material recycling device, through the cooperation of the liquid collection shell, the spiral return pipe and the liquid throwing shell, makes the recycled liquid after spraying and capturing not fall directly, but fall along the spiral path and then be dispersed and thrown out by the liquid throwing shell, which prolongs the contact time between the recycled liquid and the residual fine droplets, and makes the liquid flow before entering the centrifugal component more uniform, which is conducive to improving the stability of subsequent centrifugal separation.

[0021] (III) The garment production auxiliary material recycling device, through the cooperation of centrifugal separation tube, fine pore filter cover, liquid guiding cone tube, spiral blade and bottom blade, allows the fiber dust, lint and larger particulate impurities in the recycled liquid to be intercepted by the fine pore filter cover, while the emulsion-containing recycled liquid is introduced into the defoaming component through the liquid guiding cone tube, thereby reducing the risk of impurities entering the nozzle with the circulating liquid and causing blockage, spray deviation or forming particulate marks on the garment surface.

[0022] (iv) The garment production auxiliary material recycling device, through the cooperation of the inner baffle, outer baffle, turbulence group, flow deflector, stirring paddle and defoaming net group, makes the recycled liquid entering the bottom shell first diverted and buffered, and then cut by turbulence and defoaming by the net body. This can reduce the number of air bubbles in the recycled liquid entering the water pump and nozzle, avoid intermittent foaming of the nozzle, discontinuous spray or spray angle deviation, and reduce the possibility of spots, bright spots or local color difference caused by the bursting of air bubbles after the foamed emulsion is sprayed onto the garment again. Attached Figure Description

[0023] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a cross-sectional view of the present invention; Figure 3 This is a schematic diagram of the structure at point A of the present invention; Figure 4 This is a schematic diagram of the structure at point B of the present invention; Figure 5 This is a schematic diagram of the structure of the spray assembly of the present invention; Figure 6 This is an exploded view of the spray assembly of the present invention; Figure 7 This is a schematic diagram of the centrifuge assembly of the present invention; Figure 8 This is an exploded view of the centrifuge assembly of the present invention; Figure 9 This is a schematic diagram of the quick-connect shaft of the present invention; Figure 10 This is a schematic diagram of the structure of the defoaming component of the present invention; Figure 11 This is a schematic diagram of the structure of the turbulence group of the present invention.

[0024] In the diagram: 1. Spray assembly; 2. Centrifugal assembly; 3. Defoaming assembly; 4. Water pump; 5. Pumping pipe; 11. Top shell; 12. Feed pipe; 13. Pump liquid ring pipe; 14. Nozzle; 15. Umbrella-shaped baffle; 16. Spiral groove; 17. Liquid collection shell; 18. Fixed inner pipe; 19. Spiral return pipe; 110. Drive shaft; 111. Liquid throwing shell; 112. Quick-connect cone block; 113. Inner shrink shell; 21. Middle shell; 22. Limiting ring; 23. 24. Centrifugal separator tube; 25. Fine pore filter cover; 26. Liquid guiding cone tube; 27. Quick-connect rotating shaft; 28. Gear rod; 29. ​​Bottom blade; 20. Spiral blade; 210. Transmission gear; 31. Bottom shell; 32. Defoaming net assembly; 33. Dual-head motor; 34. Baffle; 35. Agitator; 36. Diverter shaft; 37. Inner baffle; 38. Turbulence assembly; 39. Rotating ring; 310. Top spring; 311. Power rod; 312. Outer baffle. Detailed Implementation

[0025] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0026] Please see Figure 1-11 The present invention provides a garment production auxiliary material recycling device, comprising: a water pump 4 and a defoaming component 3. The outer wall of the bottom of the defoaming component 3 is fixedly connected to the outer wall of the water pump 4 through a bracket. A centrifugal component 2 is fixedly installed on the top of the defoaming component 3. A spraying component 1 is fixedly installed on the top of the centrifugal component 2. The spraying component 1, the centrifugal component 2 and the defoaming component 3 are coaxially arranged from top to bottom. A pumping pipe 5 is fixedly connected to the water outlet end of the water pump 4. Please see Figures 1 to 4The spray assembly 1, centrifugal assembly 2, and defoaming assembly 3 all adopt a cylindrical shell structure and are connected sequentially along the vertical central axis, so that the internal material channel and liquid return channel are formed from top to bottom. The bracket on the bottom outer wall of the defoaming assembly 3 is an extended support frame, and the water pump 4 is fixed on the outside of the bracket. The pumping pipe 5 is arranged vertically along the outer wall of the spray assembly 1, centrifugal assembly 2, and defoaming assembly 3. The lower end of the pumping pipe 5 is connected to the water outlet of the water pump 4, and the upper end of the pumping pipe 5 extends to the side of the spray assembly 1 so as to form an external circulation pipeline without occupying the internal processing space.

[0027] Please see Figure 5 The spray assembly 1 includes a feed pipe 12 connected to the feeding end of an external vacuum pump. In this embodiment, the recycled object is preferably a water-based silicone wax emulsion used in the garment spraying process, or a water-based finishing emulsion with similar properties. The garment to be treated is preferably placed in a closed or relatively closed spraying space. The air inlet of the external vacuum pump is connected to the spraying space through a mist suction hood. The feeding end of the external vacuum pump is connected to the feed pipe 12. When the spray gun sprays the emulsion onto the garment surface, the droplets that do not adhere to the garment surface are carried away by the negative pressure airflow generated by the vacuum pump and enter the feed pipe 12 with the airflow.

[0028] Please see Figure 5 and Figure 6 The bottom of the feed pipe 12 is fixedly connected to the top shell 11, and the inner cavity of the top shell 11 is fixedly connected to the inner shrinking shell 113. The lower end of the feed pipe 12 communicates with the inner shrinking shell 113. The feed pipe 12 is a vertical cylindrical pipe, and its upper end extends from the top of the top shell 11 to form an outer pipe opening. This outer pipe opening is sealed and connected to the feeding end pipe of the external vacuum pump. After the external vacuum pump transports the droplets to be recovered to the feed pipe 12 with the airflow, the droplets enter the inner cavity of the top shell 11 through the lower end of the feed pipe 12. The top shell 11 is a cylindrical shell that is closed at the top and open at the bottom. The inner shrinking shell 113 is coaxially arranged inside the top shell 11. The lower part of 113 contracts towards the center to form a converging guide space below the feed pipe 12. The inner wall of the inner converging shell 113 is fixedly connected to the outer wall of the nozzle 14. The nozzles 14 are obliquely distributed. The outer wall of the nozzles 14 is fixedly connected to the pump liquid ring pipe 13. The nozzles 14 are arranged in a ring array along the central axis of the inner converging shell 113 on the pump liquid ring pipe 13. The pump liquid ring pipe 13 is located at the bottom of the inner converging shell 113. The nozzles 14 are arranged circumferentially and spaced apart along the pump liquid ring pipe 13. The liquid outlet end of the nozzle 14 faces the inner cavity of the inner converging shell 113, so that the spray liquid enters the interior of the top shell 11 from multiple circumferential positions.

[0029] Please see Figure 5 and Figure 6The shrinking profile of the inner shell 113 can moderately constrict the mist droplets below the feed pipe 12. The circumferential spray liquid ejected from the nozzle 14 forms a liquid curtain in this area. After the fine emulsion droplets collide with the liquid curtain, their particle size increases and they move downward with the spray liquid, thereby reducing the fine emulsion droplets in the airflow.

[0030] Please see Figure 5 and Figure 6 A spiral groove 16 is provided in the wall of the top of the inner shell 113. An umbrella-shaped baffle 15 is fixedly connected to the inner cavity of the inner shell 113 by a bracket. The spiral groove 16 is a spiral groove provided around the side wall of the inner cavity of the inner shell 113. The umbrella-shaped baffle 15 is a conical baffle with a high center and a low outer edge. After the auxiliary material falls onto the umbrella-shaped baffle 15, it spreads outward and finally drips into the spiral groove 16. The spray liquid can flow in a swirling direction along the spiral groove 16. A fixed inner tube 18 is fixedly connected to the bottom of the top shell 11. The fixed inner tube 18 is a hollow tube. A manifold assembly is rotatably connected inside the fixed inner tube 18. The top of the manifold assembly is rotatably connected to the inner wall at the center of the inner shell 113. The fixed inner tube 18 is a vertical hollow tube. The hollow cavity of the fixed inner tube 18 is used to accommodate and support the rotating part of the manifold assembly.

[0031] The umbrella-shaped baffle 15 spreads the mist and airflow entering from the feed pipe 12 to the periphery, while the spiral groove 16 guides the droplets falling on the top of the inner shell 113, causing the originally dispersed droplets to gradually merge along the groove, thus preventing the water-based silicone wax emulsion from adhering disorderly on the inner wall of the top shell 11.

[0032] Please see Figure 5 and Figure 6 The manifold assembly includes a liquid-throwing shell 111 rotatably connected to the inner wall of a fixed inner tube 18. The liquid-throwing shell 111 is located in the lower end region of the fixed inner tube 18 and is coaxial with the fixed inner tube 18. The liquid-throwing shell 111 is cylindrical in shape. The circumferential side walls of the fixed inner tube 18 and the liquid-throwing shell 111 have through grooves for liquid to be thrown out. A quick-connect cone 112 is fixedly connected to the inner wall at the center of the liquid-throwing shell 111. A first magnetic block is fixedly connected to the inner wall at the bottom of the quick-connect cone 112. The lower end of the quick-connect cone 112 forms... The tapered insertion part has a first magnetic block embedded in the bottom inner side of the tapered insertion part, which is used to form a detachable adsorption with the corresponding magnetic component in the centrifugal assembly 2. The top of the quick-connect tapered block 112 is fixedly connected to a drive shaft 110. The drive shaft 110 is fixedly connected to an annular liquid collection shell 17 through a bracket. The upper end of the liquid collection shell 17 is open. The inner cavity of the liquid collection shell 17 is connected to the liquid-throwing shell 111 through a spiral return pipe 19, and the top of the spiral return pipe 19 is fixedly connected to the bottom of the liquid collection shell 17.

[0033] The liquid collection shell 17 is an annular shallow groove shell. The spiral return pipe 19 extends downward in a spiral shape around the outside of the drive shaft 110. The upper end of the spiral return pipe 19 is connected to the bottom of the liquid collection shell 17, and the lower end is connected to the liquid throwing shell 111, so that the mist collected in the liquid collection shell 17 can go down along the spiral path and enter the liquid throwing shell 111.

[0034] The spiral reflux pipe 19 prevents the collected recovered liquid from falling vertically directly, but instead extends the flow distance along the outer circumference of the drive shaft 110. As the liquid descends in the spiral, it continues to absorb the fine droplets that are not completely combined. The liquid-throwing shell 111 then throws the liquid out in all directions, making the liquid flow before entering the centrifugal assembly 2 more dispersed and uniform.

[0035] The outer wall of the top of the liquid collection shell 17 is rotatably connected to the inner wall at the center of the inner shrinking shell 113. The outer wall of the middle part of the liquid collection shell 17 is rotatably connected to the top shell 11. The outer edge of the top of the liquid collection shell 17 is embedded in the annular support portion formed at the center of the inner shrinking shell 113. The outer edge of the middle part of the liquid collection shell 17 is limited by the annular support surface at the inner wall of the top shell 11, thereby enabling the liquid collection shell 17 to be supported in both vertical and radial directions and to maintain coaxial rotation. The inner wall of the top shell 11 is fixedly connected to the outer wall of the pumping ring pipe 13. The inlet end of the pumping ring pipe 13 is fixedly connected to the top of the pumping pipe 5. The pumping ring pipe 13 is fixed in the annular space enclosed by the top shell 11 and the inner shrinking shell 113. The liquid pumped by the water pump 4 first enters the pumping ring pipe 13 and then is sprayed through the nozzle 14 to the area where the umbrella-shaped baffle 15 and the spiral groove 16 are located.

[0036] The bottom of the inner cavity of the fixed inner tube 18 is set as a conical surface that is adapted to the liquid-throwing shell 111 and the quick-connect cone block 112, for rotational support of the liquid-throwing shell 111 and the quick-connect cone block 112.

[0037] Please see Figure 7 , Figure 8 and Figure 9The centrifuge assembly 2 includes a middle shell 21 fixedly installed at the bottom of the top shell 11. The middle shell 21 is a cylindrical shell that runs vertically through the top and bottom. Limiting rings 22 are fixedly connected to the inner wall of the middle shell 21. The limiting rings 22 are arranged in a linear array along the central axis of the middle shell 21. The limiting rings 22 are annular flanges fixed to the inner wall of the middle shell 21. Multiple limiting rings 22 are spaced apart along the height direction to radially limit the rotational position of the liquid guiding cone tube 25 and the centrifugal separation tube 23. The inner wall of the top of the middle shell 21 is rotatably connected to the liquid guiding cone tube 25 through a fixed groove seat. The inner wall of the middle part of the liquid guiding cone tube 25 is fixed. A spiral blade 29 is connected to the bottom of the liquid guiding cone tube 25, and a bottom blade 28 is fixedly connected to the inner wall of the bottom of the liquid guiding cone tube 25. The spiral blade 29 and the bottom blade 28 are arranged in a ring array along the central axis of the liquid guiding cone tube 25. The upper part of the liquid guiding cone tube 25 is a cylindrical receiving section, and the lower part is a downwardly contracting conical guiding section. The upper end of the liquid guiding cone tube 25 is rotatably supported on the top of the middle shell 21 through a fixed groove seat. Both the spiral blade 29 and the bottom blade 28 are plate-shaped guiding components. When they rotate with the liquid guiding cone tube 25, they can generate a downward discharge disturbance force on the recovered liquid entering the centrifugal separation tube 23 and the liquid guiding cone tube 25.

[0038] Please see Figure 7 and Figure 8 A centrifugal separation tube 23 is fixedly connected to the inner wall of the liquid guiding cone tube 25. A fine pore filter cover 24 is fixedly installed on the inner wall of the centrifugal separation tube 23. The centrifugal separation tube 23 is a cylindrical separation tube with pores or slits on its wall for liquid to pass through. The fine pore filter cover 24 is a rolled mesh cover that is attached to the inner wall of the centrifugal separation tube 23. The fine pore filter cover 24 can be pulled out from the top of the centrifugal separation tube 23 to facilitate the collection and cleaning of the trapped auxiliary materials.

[0039] Please see Figure 7 and Figure 8 The fine-pore filter hood 24 is mainly used to trap fiber dust, lint and larger particulate impurities that enter with the mist liquid, so that the recovery liquid entering the bottom shell 31 is mainly water-based silicone wax emulsion, reducing the risk of impurities entering the nozzle 14 with the circulating liquid causing blockage, spray deviation or forming particles and lint marks on the clothing surface after recycling.

[0040] Please see Figure 9 A quick-connect shaft 26 is rotatably connected to the inner wall at the center of the centrifugal separator 23. The internal teeth at the bottom of the quick-connect shaft 26 mesh with a transmission gear 210. The transmission gear 210 meshes with a gear rod 27. The gear rod 27 is installed in the mounting hole of the conical disk at the bottom of the centrifugal separator 23 through a bearing.

[0041] The centrifugal separator 23 has a mounting hole on the conical disc at the bottom. A support bearing is fixedly installed in the mounting hole. The gear rod 27 passes vertically through the bearing and is rotatably connected to the conical disc through the bearing.

[0042] Please see Figure 9The upper end of the quick-connect shaft 26 forms an insertion cavity that matches the quick-connect cone block 112, and the lower end of the quick-connect shaft 26 forms a cylindrical part with internal teeth. The transmission gear 210 is disposed inside the cylindrical part at the lower end of the quick-connect shaft 26. The gear rod 27 is arranged vertically and located below the quick-connect shaft 26. The gear segment at the top of the gear rod 27 extends into the meshing range of the transmission gear 210, so that the rotation of the gear rod 27 can be transmitted to the quick-connect shaft 26 through the transmission gear 210.

[0043] In this embodiment, the lower end of the quick-connect cone 112 forms a tapered insertion part, and the upper end of the quick-connect shaft 26 is provided with a tapered insertion cavity that matches the tapered insertion part. During assembly, the tapered insertion part is inserted into the tapered insertion cavity, and radial alignment is achieved through the cooperation of the tapered surfaces of the two. The first magnetic block at the bottom of the tapered insertion part and the second magnetic block inside the quick-connect shaft 26 attract each other to prevent the quick-connect cone 112 from detaching from the quick-connect shaft 26 axially during operation. When disassembly and cleaning are required, the quick-connect cone 112 can be lifted upwards to release the insertion and magnetic connection.

[0044] After the quick-connect cone block 112 and the quick-connect rotating shaft 26 are connected by plug-in and magnetic attraction, the spray assembly 1 and the centrifugal assembly 2 can transmit rotational power and can also be quickly separated when cleaning the fine pore filter cover 24 or treating emulsion residue, reducing the impact of water-based silicone wax emulsion drying on the coaxiality of the transmission.

[0045] In this embodiment, the manifold assembly is a rotating component in the spray assembly 1, and the centrifugal separation tube 23 is a rotating separation component in the centrifugal assembly 2. The two rotate in opposite directions through gear meshing. When the liquid-throwing shell 111 throws the recovered liquid into the centrifugal separation tube 23, the reverse rotation causes a greater relative velocity between the liquid flow and the fine pore filter cover 24. After being subjected to cross-shearing, droplets, lint and fine impurities are less likely to adhere to local positions of the filter cover along the same direction of rotation, thereby reducing clogging and improving centrifugal filtration efficiency.

[0046] A fixed column is rotatably connected to the inner wall of the transmission gear 210. The top of the fixed column is fixedly connected to the bottom of the quick-connect shaft 26. The fixed column serves as a support shaft for the transmission gear 210, enabling the transmission gear 210 to rotate stably at the bottom of the quick-connect shaft 26. The transmission gear 210 meshes with the gear at the top of the gear rod 27. A second magnetic block is fixedly connected to the inner wall of the quick-connect shaft 26. The second magnetic block is magnetically attracted to the first magnetic block. The top of the quick-connect shaft 26 is inserted into the bottom of the quick-connect cone block 112.

[0047] The first magnetic block and the second magnetic block attract each other, and the conical surface of the quick-connect cone 112 makes the two automatically align. The magnetic structure restricts the axial loosening of the quick-connect cone 112 during operation. When it is necessary to disassemble and clean the centrifugal separation tube 23 or the fine pore filter cover 24, the upward separation of the spray assembly 1 can release the insertion and magnetic engagement between the quick-connect cone 112 and the quick-connect rotating shaft 26.

[0048] Please see Figure 10 and Figure 11 The defoaming component 3 includes a bottom shell 31 fixedly installed at the bottom of the middle shell 21. The bottom shell 31 is a cylindrical tank for containing the recovered liquid. The lower end of the middle shell 21 is fixed to the upper opening of the bottom shell 31, so that the mist liquid separated by the centrifugal component 2 is separated into the recovered liquid and enters the bottom shell 31. The outer wall of the bottom shell 31 is fixedly connected to the outer wall of the water pump 4 through a bracket. The lower part of the bottom shell 31 is provided with a liquid outlet corresponding to the water inlet of the water pump 4. After the water pump 4 draws the recovered liquid in the bottom shell 31, it is sent into the pumping pipe 5. The inner wall of the bottom shell 31 is movably installed with a defoaming net assembly 32 through a soft pad. The defoaming net assembly 32 is composed of multiple annular mesh sheets stacked along the height direction. The soft pad is sandwiched between the defoaming net assembly 32 and the inner wall of the bottom shell 31 to buffer the vibration of the net body and reduce hard collisions. The inner wall at the center of the bottom shell 31 is fixedly connected to a double-head motor 33 through a bracket. The output end of the bottom of the double-head motor 33 is fixedly connected to a stirring paddle 35. The stirring paddle 35 is located inside the bracket. The outer wall of the support is fixedly connected to a baffle 34, which is arranged in a ring array along the central axis of the support. The baffle 34 is an arc-shaped baffle arranged around the central support. Multiple liquid passage holes are opened on the wall of the baffle 34, which form a flow path for the recovered liquid. In this embodiment, multiple liquid passage holes are opened on the wall of the baffle 34, which constitute the flow path for the recovered liquid. When the stirring paddle 35 pushes the recovered liquid to flow towards the baffle 34, the recovered liquid passes through the liquid passage holes and then flows to the defoaming net group 32 to disperse and buffer the recovered liquid. The output end of the top of the dual-head motor 33 is fixedly connected to a diverter shaft 36. The upper end of the outer wall of the diverter shaft 36 is connected to a rotating ring 39 through a transmission frame. The bottom of the rotating ring 39 is fixedly connected to a first magnet. The inner wall of the bottom of the bottom shell 31 is fixedly connected to a top spring 310. The end of the top spring 310 away from the bottom shell 31 is fixedly connected to a turbulence group 38.

[0049] A second magnet is fixedly connected to the top of the turbulence assembly 38. The magnetic poles of the second magnet and the first magnet repel each other when they are close to each other. A limit post is fixedly connected to the inner wall of the bottom of the bottom shell 31. The lower end of the turbulence assembly 38 is slidably connected to the limit post.

[0050] Please see Figure 11The spoiler assembly 38 consists of multiple annular spoiler plates spaced apart along the height direction and vertical connecting pieces connected between the annular spoiler plates. The multiple annular spoiler plates are fixedly connected to the vertical connecting pieces to form a stable spoiler assembly 38. The top spring 310 enables the spoiler assembly 38 to have an elastic floating amount in the vertical direction. The limiting post is inserted into the sliding hole at the bottom of the spoiler assembly 38 to limit the circumferential sway of the spoiler assembly 38 and guide it to move vertically. When the first magnet passes above the second magnet with the rotating ring 39, the repulsion of the like magnetic poles causes the first magnet to push the second magnet to move downward. The second magnet drives the spoiler assembly 38 to move downward as a whole. The repulsive force between the two acts periodically on the spoiler assembly 38. When the spoiler assembly 38 moves downward, it squeezes the top spring 310. Under the action of the elastic force of the top spring 310, the spoiler assembly 38 maintains the tendency to move upward. After the first magnet separates from the second magnet, the top spring 310 pushes the turbulence group 38 to move upward and reset under its elastic force. In conjunction with the elastic force of the top spring 310, the turbulence group 38 causes a small up-and-down disturbance to the recovered liquid and cuts the foam layer inside the bottom shell 31.

[0051] The output end of the dual-head motor 33 is fixedly connected to a power rod 311. The top of the power rod 311 is inserted into the bottom of the gear rod 27. The outer wall of the split shaft 36 is rotatably connected to an inner baffle 37 and an outer baffle 312, and an annular gap is formed between the inner baffle 37 and the outer baffle 312.

[0052] A slot is formed at the top of the power rod 311, and a plug-in end that mates with the slot is formed at the bottom of the gear rod 27. After the power rod 311 and the gear rod 27 are plugged in, they can transmit torque and separate axially during disassembly and assembly. Both the inner baffle 37 and the outer baffle 312 are cylindrical covers. The inner baffle 37 is located outside the diversion shaft 36, and the outer baffle 312 is spaced outside the inner baffle 37. The annular gap between the two allows the recovered liquid falling from the liquid guide cone 25 to pass through. After the recovered liquid enters the annular gap, it is blocked and diverted by the inner baffle 37 and the outer baffle 312, and then comes into contact with the turbulence group 38, which can reduce the degree of direct impact of liquid on the liquid surface of the bottom shell 31.

[0053] In this embodiment, the recovered liquid in the liquid guiding cone 25 is guided downward by the spiral blade 29. The recovered liquid entering the area where the bottom blade 28 is located continues to be discharged downward by the bottom blade 28. The diversion shaft 36 is located below the liquid guiding cone 25, and a slot for the recovered liquid to flow out is opened on the diversion shaft 36. After the recovered liquid discharged from the liquid guiding cone 25 enters the diversion shaft 36, it flows into the gap between the inner baffle 37 and the outer baffle 312 through the slot on the diversion shaft 36, and is discharged downward along the gap.

[0054] The defoaming component 3 serves two purposes: firstly, it reduces the amount of air bubbles in the recycled liquid entering the water pump 4 and nozzle 14, preventing intermittent bubbling, discontinuous spraying, or spray angle deviation in nozzle 14; secondly, it prevents the air bubbles from bursting on the fabric surface and causing localized enrichment of water-based silicone wax emulsion when the foam-containing recycled liquid is sprayed onto the garment again, thereby reducing the possibility of spots, bright spots, or localized color differences on the garment surface.

[0055] Working principle: During use, the garment to be treated is placed in a relatively enclosed spraying space. The spray gun sprays water-based silicone wax emulsion onto the surface of the garment in this spraying space. The air inlet of the external vacuum pump is connected to the mist suction hood of the enclosed spraying space. After the external vacuum pump is running, a negative pressure suction airflow is formed at the mist suction hood, which draws away the water-based silicone wax emulsion mist that is not attached to the surface of the garment, along with a small amount of air. The mist is then fed into the feed pipe 12 by the feed end of the vacuum pump. After the water pump 4 is started, the recovered liquid in the bottom shell 31 enters the pump liquid ring pipe 13 through the pumping pipe 5 and is sprayed into the inner shrink shell 113 by the nozzle 14. After the mist falls from the feed pipe 12, it first contacts the umbrella-shaped baffle 15. The mist disperses along the outer edge of the umbrella-shaped baffle 15. The spray liquid forms a swirling flow along the spiral groove 16 and washes the mist. The washing liquid is collected at the liquid collection shell 17 and enters the spiral return pipe 19. Then it is thrown out by the liquid throwing shell 111, so that the liquid before entering the centrifugal assembly 2 is in a dispersed state.

[0056] When the dual-head motor 33 is running, its top output end drives the gear rod 27 to rotate via the power rod 311. The gear rod 27 drives the quick-connect shaft 26 to rotate via the transmission gear 210. The quick-connect shaft 26 drives the transmission shaft 110 and the manifold assembly to rotate through the insertion and engagement with the quick-connect cone block 112. At the same time, the centrifugal separation tube 23, the liquid guiding cone tube 25, the spiral blade 29, and the bottom blade 28 form a centrifugal separation area under the action of transmission. The mist entering the centrifugal separation tube 23 moves outward under the action of rotation. After passing through the fine pore filter cover 24 and the centrifugal separation tube 23, the mist enters the bottom through the liquid guiding cone tube 25. In shell 31, larger auxiliary materials are trapped in centrifugal separation tube 23 by fine pore filter 24. Thus, water-based silicone wax emulsion droplets enter the centrifugal separation area after the spray liquid is collected. Fiber dust or larger impurities carried in by the airflow are blocked by fine pore filter 24. The recovered liquid containing emulsion is discharged downward along the liquid guiding cone tube 25 under the action of spiral blade 29 and bottom blade 28, and enters the diversion shaft 36 located below the liquid guiding cone tube 25. The spiral blade 29 applies a downward spiral guiding action to the recovered liquid, while the bottom blade 28 is used to receive the downward recovered liquid and continue to apply a downward pushing action to it.

[0057] Then, it enters the gap between the inner baffle 37 and the outer baffle 312 through the slot on the diverting shaft 36, and then flows downward along the gap and comes into contact with the turbulence group 38. The rotating ring 39 drives the first magnet to rotate. The magnetic repulsion between the first magnet and the second magnet, together with the top spring 310, causes the turbulence group 38 to be vertically disturbed. The bottom output end of the dual-head motor 33 synchronously drives the stirring paddle 35 to rotate. The stirring paddle 35 pushes the bottom liquid towards the baffle 34 and the defoaming net group 32. When the foam passes through the turbulence group 38, the baffle 34 and the defoaming net group 32, it is broken and fragmented. The defoamed recycled liquid is pumped back by the water pump 4 and sent back to the spray assembly 1, completing the circulating spray, centrifugal separation and defoaming reuse in the auxiliary material recycling process. The air entering the bottom shell 31 is discharged to the outside through the air outlet pipe on the middle shell 21.

[0058] It should be noted that, in this document, relational terms such as "first" and "second" are used merely to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.

[0059] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A garment manufacturing accessory recycling device, characterized in that, include: A water pump (4) and a defoaming component (3) are provided. The outer wall of the bottom of the defoaming component (3) is fixedly connected to the outer wall of the water pump (4) through a bracket. A centrifugal component (2) is fixedly installed on the top of the defoaming component (3). A spraying component (1) is fixedly installed on the top of the centrifugal component (2). A pumping pipe (5) is fixedly connected to the water outlet of the water pump (4). The spray assembly (1) includes a feed pipe (12) connected to the feed end of an external vacuum pump. A top shell (11) is fixedly connected to the bottom of the feed pipe (12). An inner shrink shell (113) is fixedly connected to the inner cavity of the top shell (11). The inner wall of the inner shrink shell (113) is fixedly connected to the outer wall of the nozzle (14). The nozzles (14) are distributed at an angle. A pumping ring pipe (13) is fixedly connected to the outer wall of the nozzles (14). The pumping ring pipe (13) is located at the bottom of the inner shrink shell (113). A spiral groove (16) is opened in the top wall of the inner shrink shell (113). An umbrella-shaped baffle (15) is fixedly connected to the inner cavity of the inner shrink shell (113) through a bracket. A fixed inner tube (18) is fixedly connected to the bottom of the top shell (11). The fixed inner tube (18) is a hollow tube. A manifold assembly is rotatably connected inside the fixed inner tube (18). The top of the manifold assembly is rotatably connected to the inner wall at the center of the inner shrink shell (113).

2. The garment production auxiliary material recycling device according to claim 1, characterized in that: The manifold assembly includes a liquid-throwing shell (111) rotatably connected to the inner wall of a fixed inner tube (18). A quick-connect cone block (112) is fixedly connected to the inner wall at the center of the liquid-throwing shell (111). A first magnetic block is fixedly connected to the inner wall at the bottom of the quick-connect cone block (112). A drive shaft (110) is fixedly connected to the top of the quick-connect cone block (112). An annular liquid-collecting shell (17) is fixedly connected to the drive shaft (110) via a bracket. The inner cavity of the liquid-collecting shell (17) is connected to the liquid-throwing shell (111) via a spiral return pipe (19), and the top of the spiral return pipe (19) is fixedly connected to the bottom of the liquid-collecting shell (17).

3. The garment production auxiliary material recycling device according to claim 2, characterized in that: The outer wall of the top of the liquid collection shell (17) is rotatably connected to the inner wall at the center of the inner shrinking shell (113), the outer wall of the middle part of the liquid collection shell (17) is rotatably connected to the inner wall of the top shell (11), the inner wall of the top shell (11) is fixedly connected to the outer wall of the pumping ring pipe (13), and the liquid inlet end of the pumping ring pipe (13) is fixedly connected to the top of the pumping pipe (5).

4. The garment production auxiliary material recycling device according to claim 1, characterized in that: The centrifugal assembly (2) includes a middle shell (21) fixedly installed at the bottom of the top shell (11). A limiting ring (22) is fixedly connected to the inner wall of the middle shell (21). The limiting ring (22) is arranged in a linear array along the central axis of the middle shell (21). A liquid guiding cone tube (25) is rotatably connected to the inner wall of the top of the middle shell (21) through a fixed groove seat. A spiral blade (29) is fixedly connected to the inner wall of the middle part of the liquid guiding cone tube (25). A bottom blade (28) is fixedly connected to the inner wall of the bottom of the liquid guiding cone tube (25). The spiral blade (29) and the bottom blade (28) are arranged in a ring array along the central axis of the liquid guiding cone tube (25). A centrifugal separation tube (23) is fixedly connected to the inner wall of the liquid guiding cone tube (25). A fine pore filter cover (24) is fixedly installed on the inner wall of the centrifugal separation tube (23).

5. The garment production auxiliary material recycling device according to claim 4, characterized in that: The inner wall of the centrifugal separator (23) at the center is rotatably connected to a quick-connect shaft (26). The inner teeth of the quick-connect shaft (26) mesh with a transmission gear (210). The transmission gear (210) meshes with a gear rod (27). The outer wall of the gear rod (27) is rotatably connected to the conical disk at the bottom of the centrifugal separator (23).

6. The garment production auxiliary material recycling device according to claim 5, characterized in that: The inner wall of the transmission gear (210) is rotatably connected to a fixed column. The top of the fixed column is fixedly connected to the bottom of the quick-connect shaft (26). The transmission gear (210) meshes with the gear at the top of the gear rod (27). The inner wall of the quick-connect shaft (26) is fixedly connected to a second magnetic block. The second magnetic block is magnetically attracted to the first magnetic block. The top of the quick-connect shaft (26) is inserted into the bottom of the quick-connect cone block (112).

7. The garment production auxiliary material recycling device according to claim 1, characterized in that: The defoaming component (3) includes a bottom shell (31) fixedly installed at the bottom of the middle shell (21). The outer wall of the bottom shell (31) is fixedly connected to the outer wall of the water pump (4) through a bracket. The inner wall of the bottom shell (31) is movably installed with a defoaming mesh group (32) through a soft pad. A double-headed motor (33) is fixedly connected to the inner wall at the center of the bottom shell (31) through a bracket. A stirring paddle (35) is fixedly connected to the output end at the bottom of the double-headed motor (33). The stirring paddle (35) is located inside the bracket. The outer wall of the bracket is fixedly connected to the bottom of the middle shell (21). A baffle (34) is fixedly connected, and the baffle (34) is arranged in a ring array along the central axis of the bracket. The output end of the top of the dual-head motor (33) is fixedly connected to a split shaft (36). The upper end of the outer wall of the split shaft (36) is connected to a rotating ring (39) through a transmission frame. The bottom of the rotating ring (39) is fixedly connected to a first magnet. The inner wall of the bottom of the bottom shell (31) is fixedly connected to a top spring (310). The end of the top spring (310) away from the bottom shell (31) is fixedly connected to a turbulence group (38).

8. A garment production auxiliary material recycling device according to claim 7, characterized in that: The top of the turbulence group (38) is fixedly connected to a second magnet, the second magnet and the first magnet repel each other, and the inner wall of the bottom shell (31) is fixedly connected to a limiting post, and the outer wall of the limiting post is slidably connected to the bottom of the turbulence group (38).

9. A garment production auxiliary material recycling device according to claim 7, characterized in that: The output end of the dual-head motor (33) is fixedly connected to a power rod (311). The top of the power rod (311) is inserted into the bottom of the gear rod (27). The outer wall of the split shaft (36) is rotatably connected to an inner baffle (37) and an outer baffle (312). An annular gap is formed between the inner baffle (37) and the outer baffle (312).