Multi-spindle rod auxiliary synchronous wire pay-off rack for textile production

By designing a multi-spinning rod auxiliary synchronous wire laying frame, the fixing and synchronous rotation of the wire rod is achieved by using motor drive and clamping components, the problem of synchronous wire laying and avoiding interference of multiple wire rods is solved, and the efficiency of textile production is improved.

CN115417230BActive Publication Date: 2025-07-18ANHUI WUWEI TIANCHENG TEXTILE
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Patent Information

Application Number
CN202211076949.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-09-05
Publication Date
2025-07-18
Estimated Expiration
2042-09-05

AI Technical Summary

Technical Problem

It is difficult for existing textile equipment to realize the synchronous release of multiple spinning rods, and it is easy to interfere with the textile equipment during the release process.

Method used

A multi-spinning rod auxiliary synchronous wire laying frame is designed, using a main pad plate and a slidable main frame body, equipped with an annular groove and a placement plate, and the lateral cylinder and clamping components are installed through the bearing, and the motor drive is used to achieve the fixing and synchronous rotation of the wire rod to avoid interference.

Benefits of technology

The synchronous release of multiple spinning rods is achieved, which avoids interference during the release process and improves the efficiency and stability of textile production.

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Abstract

The present invention relates to a multi-spinning rod auxiliary synchronous wire feeding rack for textile production, which is provided with a main backing plate. A slidable main frame body is arranged on the main backing plate. An annular groove is formed on the main frame body, and a placement plate is slidably mounted on the annular groove. Placement grooves are evenly distributed on the [placement plate]; a lateral cylinder is installed at each placement groove through a bearing; a clamping assembly is arranged on each lateral cylinder; a rotation drive assembly adapted to all the lateral cylinders is installed on the placement plate. The present invention can adjust the wire feeding position from two spatial dimensions of left and right and annular respectively, so as to achieve the effect of avoiding interference during wire feeding. The present invention can automatically clamp and fix the spinning rod, and can synchronously drive a plurality of spinning rods to rotate together, so as to achieve the effect of synchronous multiple wire feeding. The whole use and operation process of the present invention is relatively convenient.
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Description

Technical Field

[0001] The present invention relates to the production and processing field related to textiles, specifically a multi-spindle rod assisted synchronous wire releasing rack for textile production. Background Art

[0002] In the textile processing of wool sweaters, it has become the current production trend to use highly automated placement processing equipment for textile production. However, during the production process, it is necessary to continuously extract wool from multiple spindle rods to supply the textile demand. In practice, however, since the equipment for fixing the spindle rods is often fixed, the wires released during the wire releasing process are likely to interfere with the instruments on the textile equipment. In addition, the traditional equipment for fixing the spindle rods is also difficult to perform the wire releasing work.

[0003] In the prior art, the Chinese utility model patent with the application number 201720790126.2 proposed a wire releasing device for a textile equipment with good shock absorption effect, which can stably sleeved the coils of the textile machine on the surface of the wire releasing rod. Through the shock absorption device, the vibration intensity of the coils during the wire releasing process can be made smaller, and the shock absorption effect is better, effectively avoiding the occurrence of the problem of the textile wire being stretched and broken, and greatly improving the progress of the textile work. However, the above can only realize the wire releasing for a single spindle rod and is difficult to meet the actual wire releasing needs. Summary of the Invention

[0004] Now, in order to overcome the defects of the above traditional wire releasing technology, the present invention proposes a multi-spindle rod assisted synchronous wire releasing rack for textile production.

[0005] The technical problems to be solved by the present invention are realized by the following technical solutions: A multi-spindle rod assisted synchronous wire releasing rack for textile production is provided with a main backing plate, and a slidable main frame body is arranged on the main backing plate. An annular groove is formed on the main frame body, and a placement plate is slidably installed on the annular groove. Placement grooves are evenly distributed on the placement plate; a lateral cylinder is installed at each placement groove through a bearing; a clamping assembly is arranged on each lateral cylinder; a rotation driving assembly adapted to all the lateral cylinders is installed on the placement plate. The main frame body can rotate and slide. Each lateral cylinder can be inserted and installed with a spindle rod. The clamping assembly is used to fix the rod body of the spindle rod. The rotation driving assembly is used to control all the spindle rods to rotate and release wires.

[0006] Further, two opposing grooves are arranged on the side wall of each lateral cylinder. The two opposing grooves are collinear with the center of the lateral cylinder.

[0007] Further, each clamping assembly includes two clamping blocks slidably installed in the opposing grooves correspondingly and two L-shaped plates connected to the clamping blocks correspondingly; a cylinder is arranged on each L-shaped plate. That is, this application mainly uses two clamping blocks to clamp the rod body of the spindle rod to meet the subsequent requirement that the spindle rod rotates together with the lateral cylinder.

[0008] Further, each clamping assembly further includes a lateral plate mounted on the outer side wall of the lateral cylinder, a No. I motor mounted on the lateral plate, and a transfer rod connected to the No. I motor; transverse grooves that slide and are hinged with the corresponding cylinders are provided on both sides of each transfer rod along the length direction. That is, by driving the transfer rod to rotate with the No. I motor, it is possible to control the two clamping blocks to slide towards or away from each other, thereby controlling whether to clamp or loosen the rod body of the spinning rod.

[0009] Further, the placement grooves are distributed in a horizontal and vertical two-way rectangular array on the placement plate. This distribution structure is a conventional design.

[0010] Further, the rotation drive assembly includes a motor bracket mounted on the placement plate and a No. II motor mounted on the motor bracket; the No. II motor is connected to any one of the lateral cylinders. That is, the No. II motor can drive a single lateral cylinder to rotate.

[0011] Further, the rotation drive assembly further includes a No. I pulley mounted on each lateral cylinder, a No. I belt that drives and connects the No. I pulleys in each row, a No. II pulley mounted on any one of the lateral cylinders in each row of lateral cylinders, and a No. II belt that drives and connects all the No. II pulleys. That is, through the dual driving effect of the No. I belt and the No. II belt, all the spinning rods can rotate together with the lateral cylinders to unwind the yarn.

[0012] Further, a No. III motor is mounted on the main frame body, the No. III motor is connected to a main transfer rod, and a rotation groove that slidably cooperates with the placement plate is provided on the main transfer rod. That is, the No. III motor can drive the main transfer rod and the placement plate to rotate, thereby adjusting the position of yarn unwinding. Two round rods that cooperate with the annular groove are provided on the left part of the placement plate, and any one of the two round rods cooperates with the rotation groove.

[0013] Further, a No. IV motor and a guide rail are also mounted on the main backing plate; the No. IV motor is connected to a lead screw that is in threaded cooperation with the main frame body 1. That is, the left and right positions of the placement plate can be adjusted through the lead screw-nut drive to meet the requirements of the actual yarn unwinding and textile positions.

[0014] Further, the main frame body is slidably mounted on the guide rail.

[0015] The beneficial effects of the present invention are:

[0016] The present invention can adjust the position of yarn unwinding from two spatial dimensions of left and right and annular respectively, achieving the effect of avoiding interference in yarn unwinding, being able to automatically clamp and fix the spinning rod, and being able to synchronously drive multiple spinning rods to rotate together, achieving the effect of synchronous multiple yarn unwinding. Description of the Drawings

[0017] The present invention will be further described below in conjunction with the drawings and embodiments.

[0018] Figure 1 is the first - perspective three - dimensional view of the present invention;

[0019] Figure 2 is the three - dimensional view of the placement plate;

[0020] Figure 3 is the second - perspective three - dimensional view of the present invention;

[0021] Figure 4 is the top - view of the present invention;

[0022] Figure 5 is Figure 1 the partial enlarged view of part I;

[0023] Figure 6 is Figure 4 the A - A cross - sectional view;

[0024] Figure 7 is Figure 3 the partial enlarged view of part II.

[0025] In the figure: 1, main frame body; 1a, annular groove; 2, placement plate; 2a, placement groove; 3, lateral cylinder; 3a, opposing groove; 4, clamping block; 5, L - shaped plate; 5a, cylinder; 6, lateral plate; 7, No. I motor; 8, transfer rod; 8a, transverse groove; 9, motor frame; 10, No. II motor; 11, No. I pulley; 12, No. I belt; 13, No. II pulley; 14, No. II belt; 15, No. III motor; 16, main rotating rod; 16a, rotating groove; 17, main backing plate; 18, No. IV motor; 19, guide rail; 20, lead screw. Detailed implementation manners

[0026] In order to enable those skilled in the art to better understand the technical solution of the present invention, the following will combine the drawings in the embodiments to more clearly and completely elaborate on the present invention. Of course, the described embodiments are only a part of the present invention rather than all of it. Based on this embodiment, other embodiments obtained by those skilled in the art without creative efforts are within the protection scope of the present invention.

[0027] Such as Figure 1 、 Figure 2 and Figure 5As shown in the figure, a multi-spindle rod auxiliary synchronous wire-releasing rack for textile production is provided with a main backing plate 17. A slidable main frame body 1 is arranged on the main backing plate 17. An annular groove 1a is formed on the main frame body 1, and a placement plate 2 is slidably installed on the annular groove 1a. Placement grooves 2a are evenly distributed on the placement plate 2; a lateral cylinder 3 is installed at each placement groove 2a through a bearing; a clamping assembly is arranged on each lateral cylinder 3; a rotation driving assembly adapted to all the lateral cylinders 3 is installed on the placement plate 2. The main frame body 1 can rotate and slide. Each lateral cylinder 3 can be used for inserting and installing a spindle rod. The clamping assembly is used for fixing the rod body of the spindle rod. The rotation driving assembly is used for controlling all the spindle rods to rotate and release wire.

[0028] As Figure 4 and Figure 6 shown in the figure, two opposing grooves 3a are arranged on the side wall of each lateral cylinder 3. The two opposing grooves 3a are collinear with the center of the lateral cylinder 3.

[0029] As Figure 6 shown in the figure, each clamping assembly includes two clamping blocks 4 slidably installed in the opposing grooves 3a correspondingly and two L-shaped plates 5 connected to the clamping blocks 4 correspondingly; a cylinder 5a is arranged on each L-shaped plate 5. That is, the present application mainly uses the two clamping blocks 4 to clamp the rod body of the spindle rod to meet the subsequent requirement of allowing the spindle rod to rotate together with the lateral cylinder 3.

[0030] As Figure 3 , Figure 6 and Figure 7 shown in the figure, each clamping assembly further includes a lateral plate 6 installed on the outer side wall of the lateral cylinder 3, a No. I motor 7 installed on the lateral plate 6, and a transfer rod 8 connected to the No. I motor 7; transverse grooves 8a slidably and hingedly matched with the corresponding cylinders 5a are arranged on both sides of each transfer rod 8 along the length direction. That is, by driving the transfer rod 8 to rotate by the No. I motor 7, it is possible to control the two clamping blocks 4 to slide towards or away from each other, thereby controlling whether to clamp or loosen the rod body of the spindle rod.

[0031] The placement grooves 2a are distributed in a horizontal and vertical two-way rectangular array on the placement plate 2. This distribution structure is a conventional design.

[0032] As Figure 5 shown in the figure, the rotation driving assembly includes a motor frame 9 installed on the placement plate 2 and a No. II motor 10 installed on the motor frame 9; the No. II motor 10 is connected to any one of the lateral cylinders 3. That is, the No. II motor 10 can drive a single lateral cylinder 3 to rotate.

[0033] As Figure 5As shown, the rotation drive assembly further includes a No. I pulley 11 mounted on each lateral cylinder 3, a No. I belt 12 that drives and connects the No. I pulleys 11 in each row, a No. II pulley 13 mounted on any one of the lateral cylinders 3 in each row of lateral cylinders 3, and a No. II belt 14 that drives and connects all the No. II pulleys 13. That is, through the dual driving effect of the No. I belt 12 and the No. II belt 14, all the spinning rods can rotate together with the lateral cylinders 3 to pay out the thread.

[0034] As Figure 1 and Figure 4 As shown, a No. III motor 15 is mounted on the main frame 1. The No. III motor 15 is connected to a main rotating rod 16. A rotating groove 16a that slidably cooperates with the placement plate 2 is provided on the main rotating rod 16. That is, the No. III motor 15 can drive the main rotating rod 16 and the placement plate 2 to rotate, so as to adjust the position of the thread payout. Two round rods that cooperate with the annular groove 1a are provided on the left part of the placement plate 2. Any one of the two round rods cooperates with the rotating groove 16a.

[0035] As Figure 1 As shown, a No. IV motor 18 and a guide rail 19 are further mounted on the main backing plate 17. The No. IV motor 18 is connected to a lead screw 20 that is in threaded cooperation with the main frame 1. That is, the left and right position of the placement plate 2 can be adjusted through the lead screw and nut drive to meet the requirements of the actual position during thread payout and textile production.

[0036] The main frame 1 is slidably mounted on the guide rail 19.

[0037] Before the present invention is used, first adjust the position of the thread payout according to the requirements of the actual spinning equipment. The left and right position of the placement plate 2 can be adjusted by driving the lead screw 20 to rotate through the No. IV motor 18. On the other hand, the placement plate 2 is driven to rotate by the No. III motor 15 to adjust its circumferential position, so as to avoid interference between the paid-out thread and external equipment during the thread payout process.

[0038] Specifically, during the thread payout, first insert the rod body of each spinning rod into the corresponding lateral cylinder 3. By driving the middle rotating rod 8 to rotate clockwise through each No. I motor 7, the corresponding two clamping blocks 4 can move towards each other to clamp the spinning rod.

[0039] Furthermore, through the rotation drive of the No. II motor 10 and the drive of the two belts, all the spinning rods can rotate together with the lateral cylinders 3 to carry out the thread payout.

[0040] The basic principles, main features and advantages of the present invention have been shown and described above. Those skilled in the art should understand that the present invention is not limited by the above embodiments. What is described in the above embodiments and the specification is only the principle of the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and all these changes and improvements fall within the scope of the present invention claimed. The scope of the present invention claimed is defined by the appended claims and their equivalents.

Claims

1. The multi-spinning wire rod auxiliary synchronous wire releasing rack for textile production is provided with a main backing plate (17), and is characterized in that: A slidable main frame body (1) is provided on the main backing plate (17). An annular groove (1a) is formed on the main frame body (1). A placing plate (2) is slidably mounted on the annular groove (1a). Placing grooves (2a) are evenly distributed on the placing plate (2); a lateral cylinder (3) is mounted through a bearing at each placing groove (2a); a clamping assembly is provided on each lateral cylinder (3); a rotation drive assembly adapted to all the lateral cylinders (3) is mounted on the placing plate (2). Two opposing grooves (3a) are provided on the side wall of each lateral cylinder (3). Each clamping assembly includes two clamping blocks (4) slidably mounted in the opposing grooves (3a) correspondingly and two L-shaped plates (5) connected to the clamping blocks (4) correspondingly; a cylinder (5a) is provided on each L-shaped plate (5). Each clamping assembly further includes a lateral plate (6) mounted on the outer side wall of the lateral cylinder (3), a No. I motor (7) mounted on the lateral plate (6), and a transfer rod (8) connected to the No. I motor (7); transverse grooves (8a) slidably and hingedly engaged with the corresponding cylinders (5a) are provided on both sides of each transfer rod (8) along the length direction. The placing grooves (2a) are distributed in a horizontal and vertical two-way rectangular array on the placing plate (2).

2. The multi-spindle auxiliary synchronous wire unwinding rack for textile production according to claim 1, wherein: The rotation drive assembly includes a motor frame (9) mounted on the placing plate (2) and a No. II motor (10) mounted on the motor frame (9); the No. II motor (10) is connected to any one of the lateral cylinders (3).

3. The multi-spindle auxiliary synchronous wire unwinding rack for textile production according to claim 1, characterized in that: The rotation drive assembly further includes a No. I pulley (11) mounted on each lateral cylinder (3), a No. I belt (12) for drivingly connecting the No. I pulleys (11) in each row, a No. II pulley (13) mounted on any one of the lateral cylinders (3) in each row of lateral cylinders (3), and a No. II belt (14) for drivingly connecting all the No. II pulleys (13).

4. The multi-spindle auxiliary synchronous wire pay-off rack for textile production according to claim 1, wherein: A No. III motor (15) is mounted on the main frame body (1). The No. III motor (15) is connected to a main rotating rod (16). A rotating groove (16a) slidably engaged with the placing plate (2) is provided on the main rotating rod (16).

5. The multi-spindle auxiliary synchronous wire pay-off rack for textile production according to claim 1, characterized in that: A No. IV motor (18) and a guide rail (19) are further mounted on the main backing plate (17); the No. IV motor (18) is connected to a lead screw (20) threadedly engaged with the main frame body (1).

6. The multi-spindle auxiliary synchronous wire unwinding rack for textile production according to claim 5, characterized in that: The main frame body (1) is slidably mounted on the guide rail (19).

Citation Information

Patent Citations

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