Waste silk collecting device of chemical fiber spinning equipment

By designing a waste yarn collection device for chemical fiber spinning equipment and using a drive mechanism to achieve automatic winding of waste yarn, the problem of low efficiency of traditional manual collection is solved, space utilization is improved and processing costs are reduced.

CN223373318UActive Publication Date: 2025-09-23SICHUAN HUASHUN HAITIAN CHEM FIBER CO LTD
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Patent Information

Application Number
CN202422712549.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-07
Publication Date
2025-09-23
Estimated Expiration
2034-11-07

AI Technical Summary

Technical Problem

Traditional waste silk collection methods rely on manual operations, resulting in low volume utilization of leather bags, large space occupation, and increased processing costs.

Method used

A waste yarn collection device for chemical fiber spinning equipment is designed. A driving mechanism is used to drive the winding rod to rotate, and the waste yarn is wound on the winding rod, and automatically collected through the feeding port and feeding channel.

Benefits of technology

It improves the space utilization of waste silk, reduces the use of leather bags and subsequent processing procedures, reduces labor costs, and is easy to operate and maintain.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a waste silk collecting device of chemical fiber spinning equipment, and relates to the technical field of waste silk collection. The device comprises a mounting table, placing grooves are formed in one side of the mounting table at equal intervals, and a feeding opening communicated with the placing grooves is formed in the top of the mounting table; the wire winding rod is rotationally arranged in the middle of the back face of the containing groove. The driving mechanism is arranged on the back surface of the mounting table, and the driving mechanism is used for driving the wire winding rod to rotate; and the mounting block is embedded in the containing groove in a sliding mode, and a collecting circular groove is formed in one side of the mounting block. The driving mechanism is arranged to drive the wire winding rod to rotate, waste wires are wound on the wire winding rod, the size of the waste wires is remarkably reduced, the requirement for storage space is reduced, meanwhile, the requirement for manual operation is greatly reduced in the automatic waste wire collecting process, the collecting efficiency is improved, the using amount of leather bags and the cost of subsequent treatment procedures are reduced, and the waste wire collecting device is suitable for popularization and application. And meanwhile, the labor cost is reduced.
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Description

Technical Field

[0001] The utility model relates to the technical field of waste silk collecting equipment, in particular to a waste silk collecting device for chemical fiber spinning equipment. Background Art

[0002] In the chemical fiber production process, spinnerets are a critical step, responsible for extruding polymer solution or melt through the spinneret orifices to form fibers. However, during the spinning process, some waste fibers are inevitably generated. This waste fiber typically includes short fibers that do not meet quality standards, broken fibers, and waste generated during machine startup and shutdown. Effectively collecting and processing this waste fiber is crucial for improving production efficiency, reducing costs, and protecting the environment.

[0003] Traditional waste collection methods rely heavily on manual labor, requiring workers to manually place the waste into leather bags. Because the waste is not wound and squeezed, it becomes relatively fluffy in the bags, resulting in low volumetric utilization and requiring more bags to collect the same amount of waste. Furthermore, these numerous bags not only take up valuable factory space but also require additional steps and costs for subsequent processing, such as compression and melt recovery. Therefore, we propose a waste collection device for chemical fiber spinning equipment to address this issue. Summary of the Invention

[0004] In order to achieve the above-mentioned purpose, the present invention specifically adopts the following technical solutions:

[0005] A waste yarn collecting device for a chemical fiber spinning equipment, comprising:

[0006] A mounting platform, one side of which is provided with placement slots at equal intervals, and a top of the mounting platform is provided with a feeding port connected to the placement slots;

[0007] A wire winding rod is rotatably arranged at the middle of the back side of the placement slot;

[0008] A driving mechanism is provided on the back of the mounting platform, and is used to drive the screw rod to rotate;

[0009] The mounting block is slidably embedded in the interior of the placement groove. A collecting circular groove is constructed on one side of the mounting block. A feeding channel connected to the bottom end of the feeding port is constructed on the top of the mounting block. A circular hole is constructed on the back of the mounting block. The wire rod passes through the circular hole and extends to the interior of the collecting circular groove.

[0010] Furthermore, the driving mechanism includes a U-shaped plate fixedly arranged on the back surface of the mounting table. A mounting rod is rotatably connected between the inner side walls of the U-shaped plate. A driving motor is mounted on one outer side wall of the U-shaped plate. The output shaft of the driving motor is connected to one end of the mounting rod. A driven bevel gear is fixedly arranged at one end of the winding screw rod located outside the placement groove. Active bevel gears are fixedly arranged on the surface of the mounting rod at equal intervals. The active bevel gears and the driven bevel gear mesh with each other.

[0011] Furthermore, the width of the feeding port gradually decreases from top to bottom.

[0012] Furthermore, two sides of the front surface of the mounting block are fixedly provided with pull rods, and rubber sleeves are sleeved on the surfaces of the pull rods.

[0013] Furthermore, rollers are mounted at the four corners of the bottom surface of the mounting block. Guide grooves are formed on both sides of the bottom of the placement groove. The rollers are slidably embedded inside the guide grooves.

[0014] Furthermore, it further includes a baffle. The baffle is hinged on the lower edge of the placement groove. A locking member is arranged on the upper edge of the placement groove. The locking member is used to fix the baffle.

[0015] Furthermore, the locking member includes a screw rod threadedly connected to the upper edge of the placement groove. A strip-shaped plate is fixedly arranged on the surface of the screw rod. A strip-shaped hole is formed at the end side of the baffle. The strip-shaped plate can pass through the strip-shaped hole.

[0016] The beneficial effects of the present utility model are as follows:

[0017] By arranging the driving mechanism to drive the winding screw rod to rotate, the waste filaments are wound on the winding screw rod. The volume of the waste filaments is significantly reduced, reducing the demand for storage space. At the same time, the automated waste filament collection process greatly reduces the need for manual operation, improves the collection efficiency, reduces the usage amount of leather bags and the cost of subsequent processing procedures, and reduces the labor cost at the same time. <着

[0018] For the present utility model, the staff only needs to perform simple feeding and material taking operations. The waste filament winding is highly automated. The device is designed humanely, easy to operate, and easy to maintain and clean, and is worthy of widespread application and promotion. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 is a schematic three-dimensional structure diagram of the present utility model;

[0020] Figure 2 is a schematic top view of the present utility model;

[0021] Figure 3 is the present utility model Figure 2 [[ID=For]]

[0022] ​ Figure 4 This is another three-dimensional structural diagram of the utility model;

[0023] Figure 5 This utility model Figure 4 The enlarged structural diagram of part B in the middle;

[0024] Figure 6 It is a schematic diagram of the installation block structure of the utility model.

[0025] Figure markings: 1. Mounting table; 101. Placement groove; 1011. Guide groove; 102. Feeding port; 2. Screw winding rod; 3. Driving mechanism; 301. Shaped plate; 302. Mounting rod; 303. Driving motor; 304. Driven bevel gear; 305. Active bevel gear; 4. Mounting block; 401. Collecting circular groove; 402. Feeding channel; 403. Round hole; 404. Pull rod; 405. Roller; 5. Baffle; 501. Strip hole; 6. Locking piece; 601. Screw; 602. Strip plate. DETAILED DESCRIPTION

[0026] In order to make the purpose, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention.

[0027] The present application provides a waste yarn collection device for chemical fiber spinning equipment, which is mainly used to solve the problem in the prior art that the waste yarn is not wound and squeezed, and it is in a relatively fluffy state in the leather bag, resulting in low volume utilization of the leather bag, and more leather bags are needed to collect the same amount of waste yarn. In addition, a large number of leather bags not only take up valuable factory space, but also require additional processes and costs in subsequent processing, such as compression, melting and recovery, and the like. The following technical solutions are provided, which will be combined with Figures 1-6 Give detailed instructions:

[0028] A waste yarn collecting device for a chemical fiber spinning equipment, comprising:

[0029] The mounting platform 1 has placement slots 101 spaced evenly apart on one side thereof, and a feeding port 102 connected to the placement slots 101 is formed on the top of the mounting platform 1;

[0030] The wire rod 2 is rotatably arranged in the middle of the back side of the placement slot 101;

[0031] The driving mechanism 3 is provided on the back of the mounting platform 1 and is used to drive the screw rod 2 to rotate;

[0032] The mounting block 4 is slidably embedded in the inside of the placement groove 101. A collecting circular groove 401 is constructed on one side of the mounting block 4. A feeding channel 402 connected to the bottom end of the feeding port 102 is constructed on the top of the mounting block 4. A circular hole 403 is constructed on the back of the mounting block 4. The wire rod 2 passes through the circular hole 403 and extends to the inside of the collecting circular groove 401.

[0033] Workflow Description

[0034] Preparation stage: First, accurately install the mounting block 4 into the placement groove 101 to ensure that the wire winding rod 2 can smoothly pass through the circular hole 403 and extend into the interior of the collection circular groove 401;

[0035] Feeding operation: The operator feeds the generated waste silk through the gradually narrowing feeding port 102 at the top. The waste silk then enters the collecting circular groove 401 through the feeding channel 402 connected to the bottom of the feeding port 102 (it should be noted that if the waste silk types are the same, they can be fed into any feeding port 102. If the waste silk types are different, they need to be fed into the designated feeding port 102).

[0036] Starting the drive mechanism 3: The operator starts the drive mechanism 3, which drives the winding rod 2 to rotate and begins to orderly wind up the waste silk that falls into the collecting circular groove 401. Due to the rotation of the winding rod 2, the waste silk is tightly wound, and the volume is significantly reduced, thereby improving space utilization.

[0037] Collection completion and removal: When the waste silk in the collection groove 401 is full or reaches a predetermined amount, the operator stops the driving mechanism 3 and carefully removes the mounting block 4 (together with the wound waste silk) from the placement groove 101. At this point, the wound waste silk is tightly wound in the collection groove 401, making it easy to transfer and store.

[0038] Storage and subsequent processing: The operator can pour the mounting block 4 containing the wound waste silk directly into a leather bag or other container for storage, or perform further processing as needed, such as compression, melting recovery, etc.

[0039] The waste silk collection device of the chemical fiber spinning equipment drives the winding rod 2 to rotate by setting a driving mechanism 3, and winds the waste silk on the winding rod 2. The volume of the waste silk is significantly reduced, and the demand for storage space is reduced. At the same time, the automated waste silk collection process greatly reduces the demand for manual operation, improves the collection efficiency, reduces the use of leather bags and the cost of subsequent processing steps, and reduces labor costs. When in use, the staff only needs to perform simple feeding and taking-out operations. The waste silk winding is highly automated, the device design is user-friendly, and the operation is simple and easy to maintain and clean.

[0040] like Figure 1As shown, in some embodiments, the driving mechanism 3 includes a U-shaped plate 301 fixedly arranged on the back surface of the mounting table 1. A mounting rod 302 is rotatably connected between the inner side walls of the U-shaped plate 301. A driving motor 303 is mounted on one outer side wall of the U-shaped plate 301. The output shaft of the driving motor 303 is connected to one end of the mounting rod 302. A driven bevel gear 304 is fixedly arranged at one end of the winding screw rod 2 located outside the placement groove 101. Active bevel gears 305 are fixedly arranged at equal intervals on the surface of the mounting rod 302. The active bevel gears 305 and the driven bevel gear 304 are meshed with each other. More specifically, the working principle of the driving mechanism 3 is as follows: When the driving motor 303 is started, it drives the mounting rod 302 to rotate, and then through the meshing action of the active bevel gears 305 and the driven bevel gear 304, the winding screw rod 2 obtains the rotational power. As the winding screw rod 2 rotates, the waste wire is gradually wound on the winding screw rod 2 in the collecting circular groove 401, realizing the tight collection and volume reduction of the waste wire.

[0041] As Figure 2 shown, in some embodiments, the width of the feeding port 102 gradually decreases from top to bottom. More specifically, the gradually decreasing feeding port 102 naturally forms a guiding channel, which enables the waste wire to fall more concentratedly on the winding screw rod 2 when being put in. This design reduces the scattering and deviation of the waste wire during the falling process, ensuring that more waste wire can be effectively collected. At the same time, the relatively wide top entrance allows the operator to quickly and easily put in a large amount of waste wire, and the downward gradually narrowing design helps to control the falling speed and direction of the waste wire.

[0042] As Figure 6 shown, in some embodiments, two pull rods 404 are fixedly arranged on both sides of the front surface of the mounting block 4. Rubber sleeves are sleeved on the surfaces of the pull rods 404. More specifically, the pull rods 404 provide additional holding points for the operator, making it more stable and comfortable when taking out or putting back the mounting block 4. The addition of the rubber sleeves further increases the holding comfort and reduces the possibility of hand slipping.

[0043] As Figure 6 shown, in some embodiments, rollers 405 are mounted at the four corners of the bottom surface of the mounting block 4. Guide grooves 1011 are formed on both sides of the bottom of the placement groove 101. The rollers 405 are slidably embedded inside the guide grooves 1011. More specifically, the design of the rollers 405 enables the mounting block 4 to move smoothly, reducing the frictional resistance. The design of the guide grooves 1011 enables the rollers 405 to move only on a specific path, thus ensuring the stability and accuracy of the mounting block 4 during movement.

[0044] As Figure 4 shown, in some embodiments, it further includes a baffle 5. The baffle 5 is hinged on the lower edge of the placement groove 101. A locking member 6 is arranged on the upper edge of the placement groove 101. The locking member 6 is used to fix the baffle 5. More specifically, the baffle 5 has two main functions:

[0045] First, fix the mounting block 4: when the baffle 5 is closed, it can act as a physical barrier to prevent the mounting block 4 from accidentally sliding out of the placement slot 101, which increases the stability and safety of the entire structure;

[0046] Second, sealing the collection tank: During the collection process, the baffle 5 can seal the port of the collection tank to prevent waste silk or other materials from escaping before the collection is completed, thereby keeping the working environment clean and avoiding material waste.

[0047] like Figure 5 As shown, in some embodiments, the locking member 6 includes a screw 601 threadedly connected to the upper edge of the placement groove 101, and a strip plate 602 is fixed on the surface of the screw 601. The end side of the baffle 5 is constructed with a strip hole 501, and the strip plate 602 can pass through the strip hole 501. More specifically, when it is necessary to fix the baffle 5, the staff can rotate the baffle 5 so that the strip plate 602 passes through the strip hole 501, and then rotate the screw 601 so that the strip plate 602 is arranged in a different direction from the strip hole 501, so that the baffle 5 can be fixed. When it is necessary to release the baffle 5, the operator rotates the screw 601 in the opposite direction so that the strip plate 602 is arranged in the same direction as the strip hole 501, and the strip plate 602 will withdraw from the strip hole 501, thereby releasing the baffle 5.

[0048] The above description of the disclosed embodiments will enable one skilled in the art to implement or use the present invention. Various modifications to these embodiments will be readily apparent to one skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention is not limited to the embodiments shown herein but is intended to conform to the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A waste yarn collection device for a chemical fiber spinning equipment, characterized in that: include: A mounting platform (1), wherein placement grooves (101) are provided at equal intervals on one side of the mounting platform (1), and a feeding port (102) is configured on the top of the mounting platform (1) and is connected to the placement grooves (101); A wire winding rod (2) is rotatably arranged in the middle of the back side of the placement groove (101); A driving mechanism (3) is arranged on the back of the mounting platform (1), and the driving mechanism (3) is used to drive the screw rod (2) to rotate; The mounting block (4) is slidably embedded in the interior of the placement groove (101), and a collecting circular groove (401) is constructed on one side of the mounting block (4). A feeding channel (402) connected to the bottom end of the feeding port (102) is constructed on the top of the mounting block (4), and a circular hole (403) is constructed on the back of the mounting block (4). The wire winding rod (2) passes through the circular hole (403) and extends into the interior of the collecting circular groove (401).

2. The waste silk collection device of the chemical fiber spinning equipment according to claim 1, characterized in that: The driving mechanism (3) comprises a shaped plate (301) fixed on the back of the mounting platform (1), a mounting rod (302) being rotatably connected between the inner side walls of the shaped plate (301), a driving motor (303) being installed on one outer wall of the shaped plate (301), an output shaft of the driving motor (303) being connected to one end of the mounting rod (302), a driven bevel gear (304) being fixed on one end of the wire winding rod (2) located outside the placement groove (101), and driving bevel gears (305) being fixed on the surface of the mounting rod (302) at equal intervals, the driving bevel gear (305) being meshed with the driven bevel gear (304).

3. The waste silk collecting device of the chemical fiber spinning equipment according to claim 1, characterized in that: The width of the feeding port (102) gradually decreases from top to bottom.

4. The waste yarn collection device of a chemical fiber spinning equipment according to claim 1, characterized in that: Pull rods (404) are fixedly provided on both sides of the front of the mounting block (4), and rubber sleeves are provided on the surfaces of the pull rods (404).

5. The waste silk collecting device of the chemical fiber spinning equipment according to claim 1, characterized in that: Rollers (405) are installed at the four corners of the bottom surface of the installation block (4), and guide grooves (1011) are constructed on both sides of the bottom of the placement groove (101), and the rollers (405) are slidably embedded in the guide grooves (1011).

6. The waste yarn collection device for chemical fiber spinning equipment according to claim 1, characterized in that: It also includes a baffle (5), the baffle (5) is hinged to the lower edge of the placement groove (101), and a locking member (6) is provided on the upper edge of the placement groove (101), and the locking member (6) is used to fix the baffle (5).

7. The waste yarn collection device of the chemical fiber spinning equipment according to claim 6, characterized in that: The locking member (6) comprises a screw (601) threadedly connected to the upper edge of the placement groove (101), a strip plate (602) is fixedly provided on the surface of the screw (601), and a strip hole (501) is formed on the end side of the baffle (5), and the strip plate (602) can pass through the strip hole (501).