Material rolling device for textile processing production
By designing a material rolling device with a frisbee and a telescopic power source, the problems of rapid peeling and connection of the rotary power source and safety hazards in the prior art are solved, and efficient production and safe operation are achieved.
Patent Information
- Application Number
- CN202422152346.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-03
- Publication Date
- 2025-06-27
- Estimated Expiration
- 2034-09-03
AI Technical Summary
The existing material rolling device is not convenient for rapid peeling and connection of the rotating power source, which poses safety risks, and cannot effectively maintain an appropriate distance from the rotating power source when loading and unloading.
A material rolling device for textile processing is designed, including a main roller with rotating power and several winding units. The winding unit is contacted with the main roller through a flying disc and realizes power transmission, and the carrier plate is connected to the telescopic power source, so it can be distant from or close to the main roller to realize the cutting or docking of the power transmission.
It realizes rapid power connection and cutting between the frisbee and the main roller, improves production efficiency, and increases the safety of loading and unloading operations through the design of the carrier plate and clamp.
Smart Images

Figure CN223032677U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of textile processing, and in particular relates to a material coiling device for textile processing production. Background Art
[0002] Textile processing refers to the production of spinning and weaving with cotton and cotton-like chemical fibers as the main raw materials, as well as the production of threads for weaving and sewing. In the process of textile processing, generally involved in the raw cotton, cotton cleaning, carding, drawing, roving, spun yarn, winding, yarn and other processes.
[0003] The winding device refers to a machine used to wind up yarn. The existing winding device is not convenient for realizing the rapid stripping and connection of the rotary power source, and the winding roller used to wind up the yarn cannot maintain a considerable separation distance from the rotary power source when loading and unloading the material, resulting in a close distance between the staff and the rotary power source during manual transfer, which poses certain safety hazards. Utility Model Content
[0004] In view of the deficiencies in the prior art, the purpose of the utility model is to provide a winding device for textile processing and production.
[0005] In order to achieve the above technical purpose, the technical solution adopted by the utility model is as follows:
[0006] A winding device for textile processing and production, comprising a main roller with rotational power and a plurality of winding units, wherein the winding units are provided with flying discs, and the winding units realize power transmission through the contact between the flying discs and the main roller;
[0007] The winding unit is provided with a carrier plate, which has the freedom to move in the length direction of the slide rail under the specifications of the slide rail and the slider, and is connected to the telescopic power source, and moves away from or close to the main roller under the action of the telescopic power source, so as to realize the cutting off or docking of the power transmission between the flying disc and the main roller;
[0008] The upper surface of the carrier plate is provided with two rows of brackets arranged opposite to each other, each of the brackets is rotatably connected to a clamp, a winding roller for winding is clamped between the two clamps, and the flying disc is fixedly connected to the clamp.
[0009] It is further defined that it also includes a tray, which is placed on the upper surface of the carrier plate and receives the winding rollers that fall downward without being affected by the clamp. With such a structural design, the carrier plate can carry the tray and drive the tray to move synchronously. The tray is used to receive the winding rollers that have been wound with yarn and fall from top to bottom, thereby completing the centralized collection of the winding rollers.
[0010] Further limitation: The diameter of the frisbee is larger than that of the winding roller. A friction belt is provided on the circumferential surface of the frisbee. With such a structural design, since yarn needs to be wound around the winding roller, the continuously wound yarn will increase the diameter of the winding roller. Therefore, the diameter of the frisbee is set to be larger than that of the winding roller, so that when the frisbee contacts the main roller, there is a redundant space between the winding roller and the main roller.
[0011] Further limitation: The bracket is rotationally connected to the clamp through a bearing. With such a structural design, the bearing can reduce the rotational frictional resistance and support the clamp.
[0012] Further limitation: The clamp is provided with a housing. An electromagnet, a spring and a plug are arranged inside the housing. The spring is located between the electromagnet and the plug. Under the magnetic attraction of the electromagnet, the plug moves towards the electromagnet and compresses the spring. When the electromagnet is powered off, the plug protrudes from the housing under the action of the spring. The housing restricts the rotational freedom of the plug. The winding roller is provided with a jack for cooperating with the plug, and the jack restricts the rotational freedom of the plug. With such a structural design, the clamp mainly protrudes the plug, so that the plug is inserted into the jack of the winding roller. When the clamp rotates, it drives the winding roller to rotate together. In terms of transmission, the jack restricts the rotational freedom of the plug. The jack can be a square hole, a special-shaped hole, etc., a hole shape that can transmit torque, and the shape of the plug just needs to fit the jack. When the clamp is unlocked, the electromagnet is powered on, generates a magnetic attraction force, and attracts the plug to retract inward, compressing the spring, and the plug withdraws from the jack, thus completing the unlocking. When clamping is required, the electromagnet is powered off, the spring resets, and ejects the plug, so that the plug enters the jack.
[0013] Further limitation: Two rows of annular limiting rings are arranged on the circumferential surface of the housing. The frisbee is located between the two rows of annular limiting rings, and the frisbee is welded to the housing. With such a structural design, the limiting rings are used to limit the installation position of the frisbee, standardize the posture of the frisbee, and ensure the correct contact posture between the frisbee and the main roller.
[0014] Further limitation: The telescopic power source is selected as a cylinder or an electric cylinder. With such a structural design, the power of both the cylinder and the electric cylinder can be obtained conveniently, and it is easy to control and convenient for maintenance.
[0015] The beneficial effects of the present utility model:
[0016] 1. The power connection and disconnection between the frisbee and the main roller can be carried out quickly, which helps to shorten the production cycle and improve production efficiency;
[0017] 2. During loading and unloading, the carrier plate and the clamp are far away from the main roller and keep a considerable distance from the main roller, thereby increasing the safety of the loading and unloading operation;
[0018] 3. Each main roller cooperates with multiple winding units simultaneously. Each winding unit is independent of each other. The winding units can be independently connected and disconnected from the power source, with a higher degree of freedom. If a single winding unit is damaged, it will not interfere with other winding units. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] The present utility model can be further illustrated by the non-limiting embodiments shown in the drawings;
[0020] Figure 1 is a schematic structural diagram of an embodiment of the present utility model;
[0021] Figure 2 is for an embodiment of the present utility model in Figure 1 is a schematic structural diagram of the winding unit;
[0022] Figure 3 is for an embodiment of the present utility model in Figure 1 is a partial enlarged view at position A;
[0023] Figure 4 is a schematic structural diagram of the slide rail, slider, carrier plate, bracket and bearing in an embodiment of the present utility model;
[0024] Figure 5 is for an embodiment of the present utility model in Figure 2 is a schematic structural diagram of the clamp;
[0025] The main element symbols are explained as follows:
[0026] 1, main roller;
[0027] 2, winding unit;
[0028] 21, slide rail;
[0029] 22, slider;
[0030] 231, carrier plate; 232, bracket; 233, bearing;
[0031] 24, telescopic power source;
[0032] 25, clamp; 251, housing; 252, limit ring; 253, plug pin; 254, spring; 255, electromagnet;
[0033] 26, winding roller; 261, jack;
[0034] 27, tray;
[0035] 28, flying disc. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0036] The technical solution of the present utility model will be described in detail below in conjunction with specific embodiments and their accompanying drawings. The embodiments described herein are specific specific embodiments of the present utility model and are used to illustrate the concept of the present utility model; these descriptions are all explanatory and exemplary and should not be construed as limiting the embodiments of the present utility model and the protection scope of the present utility model. Except for the embodiments described herein, those skilled in the art can also adopt other obvious technical solutions based on the content disclosed in the claims and the specification of the present application. These technical solutions include technical solutions that make any obvious substitutions and modifications to the embodiments described herein.
[0037] As Figures 1-5 shown, this embodiment provides a coiling device for textile processing production, which includes a main roller 1 with rotational power and a plurality of winding units 2. The winding unit 2 is provided with a flying disc 28. The winding unit 2 realizes the transmission of power through the contact between the flying disc 28 and the main roller 1.
[0038] The winding unit 2 is provided with a carrier plate 231. The carrier plate 231 has the freedom to move in the length direction of the slide rail 21 under the specification of the slide rail 21 and the slider 22. The carrier plate 231 is connected to the telescopic power source 24 and moves away from or close to the main roller 1 under the action of the telescopic power source 24, realizing the cutting off or docking of the power transmission between the flying disc 28 and the main roller 1.
[0039] Two rows of oppositely arranged brackets 232 are provided on the upper surface of the carrier plate 231. Each bracket 232 is rotatably connected to a clamping device 25. A winding roller 26 for winding is clamped between the two clamping devices 25. The flying disc 28 is fixedly connected to the clamping device 25.
[0040] In this embodiment, the transmission of rotational power is realized through the contact between the flying disc 28 and the main roller 1. When the flying disc 28 contacts the main roller 1, the power of the main roller 1 can be transmitted to the flying disc 28 and finally transmitted to the winding roller 26. When the flying disc 28 is separated from the main roller 1, the power transmission between the flying disc 28 and the main roller 1 can be cut off. After the winding roller 26 winds the yarn, the rapid power disconnection helps to shorten the production beat and quickly carry out the next process, avoiding delaying the power cut-off for too long.
[0041] The separation and combination between the flying disc 28 and the main roller 1 are controlled by the telescopic power source 24. The output end of the telescopic power source 24 can move axially. Driven by the telescopic power source 24, the carrier plate 231 moves in the length direction of the slide rail 21, thereby driving the brackets 232, the clamping devices 25, and the flying disc 28 to move forward or backward synchronously.
[0042] When loading, that is, when the winding roller 26 needs to be installed between the clamps 25, the telescopic power source 24 adjusts the position of the carrier plate 231, so that the carrier plate 231 and the clamp 25 are away from the main roller 1 and keep a considerable distance from the main roller 1, thereby providing a safe loading distance for the staff. When unloading, the position of the carrier plate 231 is also adjusted by the telescopic power source 24, so that the carrier plate 231 and the clamp 25 are away from the main roller 1 and keep a considerable distance from the main roller 1, thereby increasing the safety of loading and unloading operations;
[0043] Finally, each main roller 1 cooperates with multiple winding units 2 at the same time. Each winding unit 2 is independent of each other. The winding unit 2 can independently connect and disconnect power, with a higher degree of freedom. If a single winding unit 2 is damaged, it will not interfere with other winding units 2.
[0044] Preferably, a tray 27 is further included, which is placed on the upper surface of the carrier plate 231 and receives the winding roller 26 that is not affected by the clamp 25 and falls downward. With this structural design, the carrier plate 231 can carry the tray 27 and drive the tray 27 to move synchronously. The tray 27 is used to receive the winding roller 26 that has been wound with yarn and falls from top to bottom, thereby completing the centralized collection of the winding roller 26. In fact, other structural shapes can also be considered according to specific circumstances.
[0045] Preferably, the diameter of the flying disc 28 is larger than the diameter of the winding roller 26. A friction belt is provided on the circumferential surface of the flying disc 28. With such a structural design, since the winding roller 26 needs to be wound with yarn, the continuously wound yarn will increase the diameter of the winding roller 26. Therefore, the diameter of the flying disc 28 is set to be larger than the diameter of the winding roller 26, so that when the flying disc 28 contacts the main roller 1, there is a redundant space between the winding roller 26 and the main roller 1. In fact, other structural shapes can also be considered according to specific circumstances.
[0046] Preferably, the bracket 232 is rotatably connected to the clamp 25 via a bearing 233. With such a structural design, the bearing 233 can reduce the friction resistance of rotation and support the clamp 25. In fact, other structural shapes can also be considered according to specific circumstances.
[0047] Preferably, the clamp 25 is provided with a housing 251. Inside the housing 251, an electromagnet 255, a spring 254 and a bolt 253 are arranged. The spring 254 is located between the electromagnet 255 and the bolt 253. Under the magnetic attraction of the electromagnet 255, the bolt 253 moves towards the electromagnet 255 and compresses the spring 254. When the electromagnet 255 is powered off, the bolt 253 protrudes from the housing 251 under the action of the spring 254. The housing 251 restricts the rotational freedom of the bolt 253. The winding roller 26 is provided with a jack 261 that cooperates with the bolt 253, and the jack 261 restricts the rotational freedom of the bolt 253. With such a structural design, the clamp 25 mainly protrudes the bolt 253, so that the bolt 253 is inserted into the jack 261 of the winding roller 26. When the clamp 25 rotates, it drives the winding roller 26 to rotate together. In terms of transmission, the jack 261 restricts the rotational freedom of the bolt 253. The jack 261 can be a square hole, a special-shaped hole, etc., which are hole shapes capable of transmitting torque. The shape of the bolt 253 just needs to be adapted to the jack 261. When unlocking the clamp 25, the electromagnet 255 is powered on to generate magnetic attraction and attract the bolt 253 to retract, compressing the spring 254. The bolt 253 withdraws from the jack 261 to complete the unlocking. When clamping is required, the electromagnet 255 loses power, the spring 254 resets, and ejects the bolt 253 so that the bolt 253 enters the jack 261. Actually, other structural shapes can also be considered according to specific situations.
[0048] Preferably, two rows of annular limiting rings 252 are arranged on the circumferential surface of the housing 251. The flying disc 28 is located between the two rows of annular limiting rings 252, and the flying disc 28 is welded to the housing 251. With such a structural design, the limiting rings 252 are used to limit the installation position of the flying disc 28, standardize the attitude of the flying disc 28, and ensure the correct contact attitude between the flying disc 28 and the main roller 1. Actually, other structural shapes can also be considered according to specific situations.
[0049] Preferably, the telescopic power source 24 is selected as a cylinder or an electric cylinder. With such a structural design, the power of both the cylinder and the electric cylinder can be obtained conveniently, and it is convenient to control and maintain. Actually, other structural shapes can also be considered according to specific situations.
[0050] The above embodiments only exemplarily illustrate the principles and effects of the present invention, rather than limiting the present invention. Any person skilled in the art can modify or change the above embodiments without departing from the spirit and scope of the present invention. Therefore, all equivalent modifications or changes completed by those with ordinary knowledge in the technical field without departing from the spirit and technical idea disclosed by the present invention should still be covered by the claims of the present invention.
Claims
1. A coiling device for textile processing and production, characterized in that: It comprises a main roller (1) with rotational power and a plurality of winding units (2), wherein the winding units (2) are provided with flying discs (28), and the winding units (2) achieve power transmission through the contact between the flying discs (28) and the main roller (1); The winding unit (2) is provided with a carrier plate (231), and the carrier plate (231) has the freedom to move in the length direction of the slide rail (21) under the specifications of the slide rail (21) and the slider (22). The carrier plate (231) is connected to the telescopic power source (24), and moves away from or close to the main roller (1) under the action of the telescopic power source (24), so as to realize the cutting off or docking of the power transmission between the flying disc (28) and the main roller (1); The upper surface of the carrier plate (231) is provided with two rows of brackets (232) arranged opposite to each other, each of the brackets (232) is rotatably connected to a clamp (25), a winding roller (26) for winding is clamped between the two clamps (25), and the flying disc (28) is fixedly connected to the clamp (25).
2. A winding device for textile processing and production according to claim 1, characterized in that: It also includes a tray (27), which is placed on the upper surface of the carrier plate (231) and receives the winding roller (26) that falls downward without being acted upon by the clamp (25).
3. A coiling device for textile processing and production according to claim 1, characterized in that: The diameter of the flying disc (28) is greater than the diameter of the winding roller (26). A friction belt is provided on the circumferential surface of the flying disc (28).
4. A winding device for textile processing and production according to claim 1, characterized in that: The bracket (232) is rotatably connected to the clamp (25) via a bearing (233).
5. A coiling device for textile processing and production according to claim 1, characterized in that: The clamp (25) is provided with a shell (251), and an electromagnet (255), a spring (254) and a latch (253) are arranged inside the shell (251). The spring (254) is located between the electromagnet (255) and the latch (253). Under the magnetic attraction of the electromagnet (255), the latch (253) moves toward the electromagnet (255) and compresses the spring (254). When the electromagnet (255) is powered off, the latch (253) protrudes out of the shell (251) under the action of the spring (254). The shell (251) limits the rotational freedom of the latch (253). The winding roller (26) is provided with a socket (261) that cooperates with the latch (253). The socket (261) limits the rotational freedom of the latch (253).
6. A winding device for textile processing and production according to claim 5, characterized in that: Two rows of annular limiting rings (252) are arranged on the circumferential surface of the shell (251), the flying disc (28) is located between the two rows of annular limiting rings (252), and the flying disc (28) is welded to the shell (251).
7. A winding device for textile processing and production according to claim 1, characterized in that: The telescopic power source (24) is selected from a pneumatic cylinder or an electric cylinder.